The present disclosure relates generally to the field of semiconductor devices, and particular to three-dimensional memory devices containing composition-controlled ferroelectric memory elements and methods of manufacturing the same.
A ferroelectric material refers to a material that displays spontaneous polarization of electrical charges in the absence of an applied electric field. The net polarization P of electrical charges within the ferroelectric material is non-zero in the minimum energy state. Thus, spontaneous ferroelectric polarization of the material occurs, and the ferroelectric material accumulates surfaces charges of opposite polarity types on two opposing surfaces. Polarization P of a ferroelectric material as a function of an applied voltage V thereacross displays hysteresis. The product of the remanent polarization and the coercive field of a ferroelectric material is a metric for characterizing effectiveness of the ferroelectric material.
A ferroelectric memory device is a memory device containing the ferroelectric material which is used to store information. The ferroelectric material acts as the memory material of the memory device. The dipole moment of the ferroelectric material is programmed in two different orientations (e.g., “up” or “down” polarization positions based on atom positions, such as oxygen and/or metal atom positions, in the crystal lattice) depending on the polarity of the applied electric field to the ferroelectric material to store information in the ferroelectric material. The different orientations of the dipole moment of the ferroelectric material may be detected by the electric field generated by the dipole moment of the ferroelectric material. For example, the orientation of the dipole moment may be detected by measuring electrical current passing through a semiconductor channel provided adjacent to the ferroelectric material in a field effect transistor ferroelectric memory device.
According to an aspect of the present disclosure, a semiconductor memory device is provided, which comprises: an alternating stack of insulating layers and electrically conductive layers; a memory opening vertically extending through the alternating stack; and a memory opening fill structure located in the memory opening and comprising a vertical semiconductor channel and a vertical stack of discrete ferroelectric material portions located at levels of the electrically conductive layers and comprising a ferroelectric alloy material of a first dielectric metal oxide material and a second dielectric metal oxide material; and a vertical stack of discrete dielectric material portions comprising the first dielectric metal oxide material and vertically interlaced with the vertical stack of discrete ferroelectric material portions.
According to another aspect of the present disclosure, a method of forming a semiconductor structure comprises: forming an alternating stack of insulating layers and sacrificial material layers over a substrate; forming a memory opening through the alternating stack; forming an in-process memory opening fill structure in the memory opening, wherein the in-process memory opening fill structure comprises a first dielectric metal oxide layer comprising a first dielectric metal oxide material and a vertical semiconductor channel that is formed over the first dielectric metal oxide layer; forming backside recesses by removing the sacrificial material layers selective to the insulating layers, wherein outer surface segments of the first dielectric metal oxide layer are physically exposed to the backside recesses; forming a vertical stack of discrete ferroelectric material portions by depositing a second dielectric metal oxide layer comprising a second dielectric metal oxide material in the backside recesses and alloying the second dielectric metal oxide material and the first dielectric metal oxide material at interfaces between the first dielectric metal oxide layer and the second dielectric metal oxide layer; and forming electrically conductive layers in remaining volumes of the backside recesses around the vertical stack of discrete ferroelectric material portions.
According to yet another aspect of the present disclosure, a semiconductor memory device is provided, which comprises: an alternating stack of insulating layers and electrically conductive layers; a memory opening vertically extending through the alternating stack; and a memory opening fill structure located in the memory opening and comprising a vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions and a vertical semiconductor channel, wherein: the discrete non-stoichiometric oxygen-deficient ferroelectric material portions are vertically spaced apart from each other; and each of the discrete non-stoichiometric oxygen-deficient ferroelectric material portions is in direct contact with a sidewall of a respective oxygen-gettering liner.
According to still another aspect of the present disclosure, a method of forming a semiconductor structure comprises: forming an alternating stack of insulating layers and sacrificial material layers over a substrate; forming a memory opening through the alternating stack; forming an in-process memory opening fill structure in the memory opening, wherein the in-process memory opening fill structure comprises metal oxide tubular portions located at levels of the sacrificial material layers and a vertical semiconductor channel that is formed over the metal oxide tubular portions; forming backside recesses by removing the sacrificial material layers selective to the insulating layers and the metal oxide tubular portions; forming an oxygen-gettering liner in each of the backside recesses and directly on an outer sidewall of a respective one of the metal oxide tubular portions; and gettering oxygen atoms from the metal oxide tubular portions to convert them into a vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions.
As discussed above, the embodiments of the present disclosure are directed to three-dimensional memory devices containing composition-controlled ferroelectric memory elements and methods of manufacturing the same, the various aspects of which are described below. The embodiments of the disclosure may be employed to form various structures including a multilevel memory structure, non-limiting examples of which include semiconductor devices such as three-dimensional memory array devices comprising a plurality of NAND memory strings.
The drawings are not drawn to scale. Multiple instances of an element may be duplicated where a single instance of the element is illustrated, unless absence of duplication of elements is expressly described or clearly indicated otherwise. Ordinals such as “first,” “second,” and “third” are employed merely to identify similar elements, and different ordinals may be employed across the specification and the claims of the instant disclosure. The same reference numerals refer to the same element or similar element. Unless otherwise indicated, elements having the same reference numerals are presumed to have the same composition and the same function. Unless otherwise indicated, a “contact” between elements refers to a direct contact between elements that provides an edge or a surface shared by the elements. As used herein, a first element located “on” a second element may be located on the exterior side of a surface of the second element or on the interior side of the second element. As used herein, a first element is located “directly on” a second element if there exist a physical contact between a surface of the first element and a surface of the second element. As used herein, a first element is “electrically connected to” a second element if there exists a conductive path consisting of at least one conductive material between the first element and the second element. As used herein, a “prototype” structure or an “in-process” structure refers to a transient structure that is subsequently modified in the shape or composition of at least one component therein.
As used herein, a “layer” refers to a material portion including a region having a thickness. A layer may extend over the entirety of an underlying or overlying structure, or may have an extent less than the extent of an underlying or overlying structure. Further, a layer may be a region of a homogeneous or inhomogeneous continuous structure that has a thickness less than the thickness of the continuous structure. For example, a layer may be located between any pair of horizontal planes between, or at, a top surface and a bottom surface of the continuous structure. A layer may extend horizontally, vertically, and/or along a tapered surface. A substrate may be a layer, may include one or more layers therein, or may have one or more layer thereupon, thereabove, and/or therebelow.
As used herein, a first surface and a second surface are “vertically coincident” with each other if the second surface overlies or underlies the first surface and there exists a vertical plane or a substantially vertical plane that includes the first surface and the second surface. A substantially vertical plane is a plane that extends straight along a direction that deviates from a vertical direction by an angle less than 5 degrees. A vertical plane or a substantially vertical plane is straight along a vertical direction or a substantially vertical direction, and may, or may not, include a curvature along a direction that is perpendicular to the vertical direction or the substantially vertical direction.
A monolithic three-dimensional memory array is a memory array in which multiple memory levels are formed above a single substrate, such as a semiconductor wafer, with no intervening substrates. The term “monolithic” means that layers of each level of the array are directly deposited on the layers of each underlying level of the array. In contrast, two dimensional arrays may be formed separately and then packaged together to form a non-monolithic memory device. For example, non-monolithic stacked memories have been constructed by forming memory levels on separate substrates and vertically stacking the memory levels, as described in U.S. Pat. No. 5,915,167 titled “Three-dimensional Structure Memory.” The substrates may be thinned or removed from the memory levels before bonding, but as the memory levels are initially formed over separate substrates, such memories are not true monolithic three-dimensional memory arrays. The various three-dimensional memory devices of the present disclosure include a monolithic three-dimensional NAND string memory device, and may be fabricated employing the various embodiments described herein.
Generally, a semiconductor package (or a “package”) refers to a unit semiconductor device that may be attached to a circuit board through a set of pins or solder balls. A semiconductor package may include a semiconductor chip (or a “chip”) or a plurality of semiconductor chips that are bonded thereamongst, for example, by flip-chip bonding or another chip-to-chip bonding. A package or a chip may include a single semiconductor die (or a “die”) or a plurality of semiconductor dies. A die is the smallest unit that can independently execute external commands or report status. Typically, a package or a chip with multiple dies is capable of simultaneously executing as many number of external commands as the total number of planes therein. Each die includes one or more planes. Identical concurrent operations may be executed in each plane within a same die, although there may be some restrictions. In case a die is a memory die, i.e., a die including memory elements, concurrent read operations, concurrent write operations, or concurrent erase operations may be performed in each plane within a same memory die. In a memory die, each plane contains a number of memory blocks (or “blocks”), which are the smallest unit that may be erased by in a single erase operation. Each memory block contains a number of pages, which are the smallest units that may be selected for programming. A page is also the smallest unit that may be selected to a read operation.
Referring to
As used herein, a “semiconducting material” refers to a material having electrical conductivity in the range from 1.0×10−5 S/m to 1.0×105 S/m. As used herein, a “semiconductor material” refers to a material having electrical conductivity in the range from 1.0×10−5 S/m to 1.0 S/m in the absence of electrical dopants therein, and is capable of producing a doped material having electrical conductivity in a range from 1.0 S/m to 1.0×105 S/m upon suitable doping with an electrical dopant. As used herein, an “electrical dopant” refers to a p-type dopant that adds a hole to a valence band within a band structure, or an n-type dopant that adds an electron to a conduction band within a band structure. As used herein, a “conductive material” refers to a material having electrical conductivity greater than 1.0×105 S/m. As used herein, an “insulator material” or a “dielectric material” refers to a material having electrical conductivity less than 1.0×10−5 S/m. As used herein, a “heavily doped semiconductor material” refers to a semiconductor material that is doped with electrical dopant at a sufficiently high atomic concentration to become a conductive material either as formed as a crystalline material or if converted into a crystalline material through an anneal process (for example, from an initial amorphous state), i.e., to have electrical conductivity greater than 1.0×105 S/m. A “doped semiconductor material” may be a heavily doped semiconductor material, or may be a semiconductor material that includes electrical dopants (i.e., p-type dopants and/or n-type dopants) at a concentration that provides electrical conductivity in the range from 1.0×10−5 S/m to 1.0×105 S/m. An “intrinsic semiconductor material” refers to a semiconductor material that is not doped with electrical dopants. Thus, a semiconductor material may be semiconducting or conductive, and may be an intrinsic semiconductor material or a doped semiconductor material. A doped semiconductor material may be semiconducting or conductive depending on the atomic concentration of electrical dopants therein. As used herein, a “metallic material” refers to a conductive material including at least one metallic element therein. All measurements for electrical conductivities are made at the standard condition.
In one embodiment, at least one semiconductor device 700 for a peripheral circuitry may be formed on a portion of the substrate semiconductor layer 9. The at least one semiconductor device can include, for example, field effect transistors. For example, at least one shallow trench isolation structure 720 may be formed by etching portions of the substrate semiconductor layer 9 and depositing a dielectric material therein. A gate dielectric layer, at least one gate conductor layer, and a gate cap dielectric layer may be formed over the substrate semiconductor layer 9, and may be subsequently patterned to form at least one gate structure (750, 752, 754, 758), each of which can include a gate dielectric 750, a gate electrode (752, 754), and a gate cap dielectric 758. The gate electrode (752, 754) may include a stack of a first gate electrode portion 752 and a second gate electrode portion 754. At least one gate spacer 756 may be formed around the at least one gate structure (750, 752, 754, 758) by depositing and anisotropically etching a dielectric liner. Active regions 730 may be formed in upper portions of the substrate semiconductor layer 9, for example, by introducing electrical dopants employing the at least one gate structure (750, 752, 754, 758) as masking structures. Additional masks may be employed as needed. The active region 730 can include source regions and drain regions of field effect transistors. A first dielectric liner 761 and a second dielectric liner 762 may be optionally formed. Each of the first and second dielectric liners (761, 762) can comprise a silicon oxide layer, a silicon nitride layer, and/or a dielectric metal oxide layer. As used herein, silicon oxide includes silicon dioxide as well as non-stoichiometric silicon oxides having more or less than two oxygen atoms for each silicon atoms. Silicon dioxide is preferred. In an illustrative example, the first dielectric liner 761 may be a silicon oxide layer, and the second dielectric liner 762 may be a silicon nitride layer. The least one semiconductor device for the peripheral circuitry can contain a driver circuit for memory devices to be subsequently formed, which can include at least one NAND device.
A dielectric material such as silicon oxide may be deposited over the at least one semiconductor device, and may be subsequently planarized to form a planarization dielectric layer 770. In one embodiment the planarized top surface of the planarization dielectric layer 770 may be coplanar with a top surface of the dielectric liners (761, 762). Subsequently, the planarization dielectric layer 770 and the dielectric liners (761, 762) may be removed from an area to physically expose a top surface of the substrate semiconductor layer 9. As used herein, a surface is “physically exposed” if the surface is in physical contact with vacuum, or a gas phase material (such as air).
The optional semiconductor material layer 10, if present, may be formed on the top surface of the substrate semiconductor layer 9 prior to, or after, formation of the at least one semiconductor device 700 by deposition of a single crystalline semiconductor material, for example, by selective epitaxy. The deposited semiconductor material may be the same as, or may be different from, the semiconductor material of the substrate semiconductor layer 9. The deposited semiconductor material may be any material that may be employed for the substrate semiconductor layer 9 as described above. The single crystalline semiconductor material of the semiconductor material layer 10 may be in epitaxial alignment with the single crystalline structure of the substrate semiconductor layer 9. Portions of the deposited semiconductor material located above the top surface of the planarization dielectric layer 770 may be removed, for example, by chemical mechanical planarization (CMP). In this case, the semiconductor material layer 10 can have a top surface that is coplanar with the top surface of the planarization dielectric layer 770.
The region (i.e., area) of the at least one semiconductor device 700 is herein referred to as a peripheral device region 200. The region in which a memory array is subsequently formed is herein referred to as a memory array region 100. A staircase region 300 for subsequently forming stepped terraces of electrically conductive layers may be provided between the memory array region 100 and the peripheral device region 200. In an alternative embodiment, the at least one semiconductor device 700 is formed under the memory array region 100 in a CMOS under array (“CUA”) configuration. In this case, the peripheral device region 200 may be omitted or used in combination with the CUA configuration. In another alternative embodiment, the at least one semiconductor device 700 may be formed on a separate substrate and then bonded to substrate (9, 10) containing the memory array region 100.
Referring to
Each first material layer includes a first material, and each second material layer includes a second material that is different from the first material. In one embodiment, each first material layer may be an insulating layer 32, and each second material layer may be a sacrificial material layer. In this case, the stack can include an alternating plurality of insulating layers 32 and sacrificial material layers 42, and constitutes a prototype stack of alternating layers comprising insulating layers 32 and sacrificial material layers 42.
The stack of the alternating plurality is herein referred to as an alternating stack (32, 42). In one embodiment, the alternating stack (32, 42) can include insulating layers 32 composed of the first material, and sacrificial material layers 42 composed of a second material different from that of insulating layers 32. The first material of the insulating layers 32 may be at least one insulating material. As such, each insulating layer 32 may be an insulating material layer. Insulating materials that may be employed for the insulating layers 32 include, but are not limited to, silicon oxide (including doped or undoped silicate glass), silicon nitride, silicon oxynitride, organosilicate glass (OSG), spin-on dielectric materials, dielectric metal oxides that are commonly known as high dielectric constant (high-k) dielectric oxides (e.g., aluminum oxide, hafnium oxide, etc.) and silicates thereof, dielectric metal oxynitrides and silicates thereof, and organic insulating materials. In one embodiment, the first material of the insulating layers 32 may be silicon oxide.
The second material of the sacrificial material layers 42 is a sacrificial material that may be removed selective to the first material of the insulating layers 32. As used herein, a removal of a first material is “selective to” a second material if the removal process removes the first material at a rate that is at least twice the rate of removal of the second material. The ratio of the rate of removal of the first material to the rate of removal of the second material is herein referred to as a “selectivity” of the removal process for the first material with respect to the second material.
The sacrificial material layers 42 may comprise an insulating material, a semiconductor material, or a conductive material. The second material of the sacrificial material layers 42 may be subsequently replaced with electrically conductive electrodes which can function, for example, as control gate electrodes of a vertical NAND device. Non-limiting examples of the second material include silicon nitride, an amorphous semiconductor material (such as amorphous silicon), and a polycrystalline semiconductor material (such as polysilicon). In one embodiment, the sacrificial material layers 42 may be spacer material layers that comprise silicon nitride or a semiconductor material including at least one of silicon and germanium.
In one embodiment, the insulating layers 32 can include silicon oxide, and sacrificial material layers can include silicon nitride sacrificial material layers. The first material of the insulating layers 32 may be deposited, for example, by chemical vapor deposition (CVD). For example, if silicon oxide is employed for the insulating layers 32, tetraethyl orthosilicate (TEOS) may be employed as the precursor material for the CVD process. The second material of the sacrificial material layers 42 may be formed, for example, CVD or atomic layer deposition (ALD).
The sacrificial material layers 42 may be suitably patterned so that conductive material portions to be subsequently formed by replacement of the sacrificial material layers 42 can function as electrically conductive electrodes, such as the control gate electrodes of the monolithic three-dimensional NAND string memory devices to be subsequently formed. The sacrificial material layers 42 may comprise a portion having a strip shape extending substantially parallel to the major surface 7 of the substrate.
The thicknesses of the insulating layers 32 and the sacrificial material layers 42 may be in a range from 20 nm to 50 nm, although lesser and greater thicknesses may be employed for each insulating layer 32 and for each sacrificial material layer 42. The number of repetitions of the pairs of an insulating layer 32 and a sacrificial material layer (e.g., a control gate electrode or a sacrificial material layer) 42 may be in a range from 2 to 1,024, and typically from 8 to 256, although a greater number of repetitions can also be employed. The top and bottom gate electrodes in the stack may function as the select gate electrodes. In one embodiment, each sacrificial material layer 42 in the alternating stack (32, 42) can have a uniform thickness that is substantially invariant within each respective sacrificial material layer 42.
The topmost layer of the alternating stack (32, 42) may comprise a topmost insulating layer 32T, which is an insulating layer 32 that is located above all other insulating layers 32. The topmost insulating layer 32T includes a dielectric material that is different from the material of the sacrificial material layers 42. In one embodiment, the topmost insulating layer 32T can include a dielectric material that may be employed for the insulating layers 32 as described above. The topmost insulating layer 32T can have a greater thickness than each of the insulating layers 32. The topmost insulating layer 32T may be deposited, for example, by chemical vapor deposition. In one embodiment, the topmost insulating layer 32T may be a silicon oxide layer.
Referring to
The terrace region is formed in the staircase region 300, which is located between the memory array region 100 and the peripheral device region 200 containing the at least one semiconductor device for the peripheral circuitry. The stepped cavity can have various stepped surfaces such that the horizontal cross-sectional shape of the stepped cavity changes in steps as a function of the vertical distance from the top surface of the substrate (9, 10). In one embodiment, the stepped cavity may be formed by repetitively performing a set of processing steps. The set of processing steps can include, for example, an etch process of a first type that vertically increases the depth of a cavity by one or more levels, and an etch process of a second type that laterally expands the area to be vertically etched in a subsequent etch process of the first type. As used herein, a “level” of a structure including alternating plurality is defined as the relative position of a pair of a first material layer and a second material layer within the structure.
Each sacrificial material layer 42 other than a topmost sacrificial material layer 42 within the alternating stack (32, 42) laterally extends farther than any overlying sacrificial material layer 42 within the alternating stack (32, 42) in the terrace region. The terrace region includes stepped surfaces of the alternating stack (32, 42) that continuously extend from a bottommost layer within the alternating stack (32, 42) to a topmost layer within the alternating stack (32, 42).
Each vertical step of the stepped surfaces can have the height of one or more pairs of an insulating layer 32 and a sacrificial material layer. In one embodiment, each vertical step can have the height of a single pair of an insulating layer 32 and a sacrificial material layer 42. In another embodiment, multiple “columns” of staircases may be formed along a first horizontal direction hd1 such that each vertical step has the height of a plurality of pairs of an insulating layer 32 and a sacrificial material layer 42, and the number of columns may be at least the number of the plurality of pairs. Each column of staircase may be vertically offset from each other such that each of the sacrificial material layers 42 has a physically exposed top surface in a respective column of staircases. In the illustrative example, two columns of staircases are formed for each block of memory stack structures to be subsequently formed such that one column of staircases provide physically exposed top surfaces for odd-numbered sacrificial material layers 42 (as counted from the bottom) and another column of staircases provide physically exposed top surfaces for even-numbered sacrificial material layers (as counted from the bottom). Configurations employing three, four, or more columns of staircases with a respective set of vertical offsets among the physically exposed surfaces of the sacrificial material layers 42 may also be employed. Each sacrificial material layer 42 has a greater lateral extent, at least along one direction, than any overlying sacrificial material layers 42 such that each physically exposed surface of any sacrificial material layer 42 does not have an overhang. In one embodiment, the vertical steps within each column of staircases may be arranged along the first horizontal direction hd1, and the columns of staircases may be arranged along a second horizontal direction hd2 that is perpendicular to the first horizontal direction hd1. In one embodiment, the first horizontal direction hd1 may be perpendicular to the boundary between the memory array region 100 and the staircase region 300.
A retro-stepped dielectric material portion 65 (i.e., an insulating fill material portion) may be formed in the stepped cavity by deposition of a dielectric material therein. For example, a dielectric material such as silicon oxide may be deposited in the stepped cavity. Excess portions of the deposited dielectric material may be removed from above the top surface of the topmost insulating layer 32T, for example, by chemical mechanical planarization (CMP). The remaining portion of the deposited dielectric material filling the stepped cavity constitutes the retro-stepped dielectric material portion 65. As used herein, a “retro-stepped” element refers to an element that has stepped surfaces and a horizontal cross-sectional area that increases monotonically as a function of a vertical distance from a top surface of a substrate on which the element is present. If silicon oxide is employed for the retro-stepped dielectric material portion 65, the silicon oxide of the retro-stepped dielectric material portion 65 may, or may not, be doped with dopants such as B, P, and/or F.
Optionally, drain-select-level isolation structures 72 may be formed through the topmost insulating layer 32T and a subset of the sacrificial material layers 42 located at drain-select-levels. The drain-select-level isolation structures 72 may be formed, for example, by forming drain-select-level isolation trenches and filling the drain-select-level isolation trenches with a dielectric material such as silicon oxide. Excess portions of the dielectric material may be removed from above the top surface of the topmost insulating layer 32T.
Referring to
The memory openings 49 extend through the entirety of the alternating stack (32, 42). The support openings 19 extend through a subset of layers within the alternating stack (32, 42). The chemistry of the anisotropic etch process employed to etch through the materials of the alternating stack (32, 42) can alternate to optimize etching of the first and second materials in the alternating stack (32, 42). The anisotropic etch may be, for example, a series of reactive ion etches. The sidewalls of the memory openings 49 and the support openings 19 may be substantially vertical, or may be tapered. The patterned lithographic material stack may be subsequently removed, for example, by ashing.
The memory openings 49 and the support openings 19 can extend from the top surface of the alternating stack (32, 42) to at least the horizontal plane including the topmost surface of the semiconductor material layer 10. In one embodiment, an overetch into the semiconductor material layer 10 may be optionally performed after the top surface of the semiconductor material layer 10 is physically exposed at a bottom of each memory opening 49 and each support opening 19. The overetch may be performed prior to, or after, removal of the lithographic material stack. In other words, the recessed surfaces of the semiconductor material layer 10 may be vertically offset from the un-recessed top surfaces of the semiconductor material layer 10 by a recess depth. The recess depth may be, for example, in a range from 1 nm to 50 nm, although lesser and greater recess depths can also be employed. The overetch is optional, and may be omitted. If the overetch is not performed, the bottom surfaces of the memory openings 49 and the support openings 19 may be coplanar with the topmost surface of the semiconductor material layer 10.
Each of the memory openings 49 and the support openings 19 may include a sidewall (or a plurality of sidewalls) that extends substantially perpendicular to the topmost surface of the substrate. A two-dimensional array of memory openings 49 may be formed in the memory array region 100. A two-dimensional array of support openings 19 may be formed in the staircase region 300. The substrate semiconductor layer 9 and the semiconductor material layer 10 collectively constitutes a substrate (9, 10), which may be a semiconductor substrate. Alternatively, the semiconductor material layer 10 may be omitted, and the memory openings 49 and the support openings 19 may be extend to a top surface of the substrate semiconductor layer 9.
Referring to
Generally, the first dielectric metal oxide material and the second dielectric metal oxide material may be determined after selection of the ferroelectric metal oxide material to be subsequently employed in the memory devices of the present disclosure.
In one embodiment, the ferroelectric metal oxide material may be a ferroelectric hafnium-metal oxide including hafnium and at least one additional metal that is not hafnium. In this case, hafnium or a combination of hafnium and at least another metal may be employed as the at least one first metal element M or as the at least one second metal element Q within the material composition of MαQγO(β+δ). The ferroelectric metal oxide material having the material composition of MαQγO(β+δ) may comprise an orthorhombic phase hafnium-metal oxide including oxygen, hafnium, and at least one metal selected from Al, Zr, Y, Gd, La or Sr. In one embodiment, one of the first dielectric metal oxide material and the second dielectric metal oxide material may be hafnium oxide, another of the first dielectric metal oxide material and the second dielectric metal oxide material may be zirconium oxide, and the ferroelectric metal oxide material may be orthorhombic hafnium zirconium oxide. In another embodiment, one of the first dielectric metal oxide material and the second dielectric metal oxide material may be hafnium oxide, another of the first dielectric metal oxide material and the second dielectric metal oxide material may be aluminum oxide, and ferroelectric metal oxide material may be orthorhombic aluminum doped hafnium oxide.
In yet another embodiment, the ferroelectric metal oxide material may be a ferroelectric titanium-metal oxide including titanium and at least one additional metal other than titanium. In this case, titanium or a combination of titanium and at least another metal may be employed as the at least one first metal element M or as the at least one second metal element Q, while the other one of Q or M may comprise barium, lead or a combination of lead with zirconium or lanthanum within the material composition of MαQγO(β+δ). The ferroelectric metal oxide material having the material composition of MαQγO(β+δ) may comprise a titanate ferroelectric material such as barium titanate, lead titanate, lead zirconate titanate, lead lanthanum zirconate titanate (“PLZT”), etc.
The first dielectric metal oxide layer 53L may be formed by a conformal deposition process such as a chemical vapor deposition process or an atomic layer deposition process. The thickness of the first dielectric metal oxide layer 53L may be in a range from 1 nm to 20 nm, such as from 2 nm to 10 nm, although lesser and greater thicknesses may also be employed. An anisotropic etch process may be performed to remove horizontally-extending portions of the first dielectric metal oxide layer 53L. Each remaining portion of the first dielectric metal oxide layer 53L can have a respective tubular configuration, and may be located entirely within a respective memory opening 49 or within a respective support opening 19. Each first dielectric metal oxide layer 53L may be formed within a respective one of the memory openings 49 and the support openings 19. A memory cavity 49′, which is an unfilled volume of a memory opening 49, may be present within each memory opening 49.
Referring to
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The set of all material portions that fills a memory opening 49 constitutes an in-process memory opening fill structure 58′. The set of all material portions that fills a support opening constitutes a support pillar structure 20. Each of the in-process memory opening fill structures 58′ and the support pillar structures 20 may comprise a respective first dielectric metal oxide layer 53L contacting an entirety of a sidewall of a respective memory opening 49 or a respective support opening 19 and comprising and/or consisting essentially of the first dielectric metal oxide material having a material composition of MαOβ, a respective vertical semiconductor channel 60 contacting a respective surface segment of the semiconductor material layer 10 and the first dielectric metal oxide layer 53L, a respective dielectric core 62, and a respective drain region 63 that contacts an upper end of the respective vertical semiconductor channel 60. In one embodiment, top surfaces of the in-process memory opening fill structures 58′ and the support pillar structures 20 may be formed within the horizontal plane including the top surface of the topmost insulating layer 32T.
Referring to
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Subsequently, the processing steps of
Referring to
A photoresist layer (not shown) may be applied over the contact level dielectric layer 73, and is lithographically patterned to form openings in areas between clusters of memory opening fill structures 58. The pattern in the photoresist layer may be transferred through the contact level dielectric layer 73, the alternating stack (32, 42) and/or the retro-stepped dielectric material portion 65 employing an anisotropic etch to form backside trenches 79, which vertically extend from the top surface of the contact level dielectric layer 73 at least to the top surface of the substrate (9, 10), and laterally extend through the memory array region 100 and the staircase region 300.
In one embodiment, the backside trenches 79 can laterally extend along a first horizontal direction hd1 and may be laterally spaced apart from each other along a second horizontal direction hd2 that is perpendicular to the first horizontal direction hd1. The memory opening fill structures 58 may be arranged in rows that extend along the first horizontal direction hd1. The drain-select-level isolation structures 72 can laterally extend along the first horizontal direction hd1. Each backside trench 79 can have a uniform width that is invariant along the lengthwise direction (i.e., along the first horizontal direction hd1). Each drain-select-level isolation structure 72 can have a uniform vertical cross-sectional profile along vertical planes that are perpendicular to the first horizontal direction hd1 that is invariant with translation along the first horizontal direction hd1. Multiple rows of memory opening fill structures 58 may be located between a neighboring pair of a backside trench 79 and a drain-select-level isolation structure 72, or between a neighboring pair of drain-select-level isolation structures 72. In one embodiment, the backside trenches 79 can include a source contact opening in which a source contact via structure may be subsequently formed. The photoresist layer may be removed, for example, by ashing.
Referring to
The etch process that removes the second material selective to the first material and the first dielectric metal oxide layers 53L can be a wet etch process employing a wet etch solution, or can be a gas phase (dry) etch process in which the etchant is introduced in a vapor phase into the backside trenches 79. For example, if the sacrificial material layers 42 include silicon nitride, the etch process can be a wet etch process in which the exemplary structure is immersed within a wet etch tank including phosphoric acid, which etches silicon nitride selective to silicon oxide, silicon, and various other materials employed in the art. The support pillar structure 20, the retro-stepped dielectric material portion 65, and the in-process memory opening fill structures 58′ provide structural support while the backside recesses 43 are present within volumes previously occupied by the sacrificial material layers 42.
Each backside recess 43 can be a laterally extending cavity having a lateral dimension that is greater than the vertical extent of the cavity. In other words, the lateral dimension of each backside recess 43 can be greater than the height of the backside recess 43. A plurality of backside recesses 43 can be formed in the volumes from which the second material of the sacrificial material layers 42 is removed. The memory openings in which the in-process memory opening fill structures 58′ are formed are herein referred to as front side openings or front side cavities in contrast with the backside recesses 43.
In one embodiment, the memory array region 100 comprises an array of three-dimensional NAND strings having a plurality of device levels disposed above the substrate (9, 10). In this case, each backside recess 43 can define a space for receiving a respective word line of the array of three-dimensional NAND strings.
Each of the plurality of backside recesses 43 can extend substantially parallel to the top surface of the substrate (9, 10). A backside recess 43 can be vertically bounded by a top surface of an underlying insulating layer 32 and a bottom surface of an overlying insulating layer 32. In one embodiment, each backside recess 43 can have a uniform height throughout.
Referring to
As discussed above, the first metal oxide material of the first dielectric metal oxide layer 53L has a material composition of MαOβ, and the second metal oxide material of the second dielectric metal oxide layer 44 has a material composition of QγOδ, and the ferroelectric metal oxide material to be subsequently formed has a material composition of MαQγO(β+δ). If M is hafnium and the first dielectric metal oxide layer 53L comprises hafnium oxide, then Q may be zirconium or aluminum, and the second dielectric metal oxide layer 44 comprises zirconium oxide or aluminum oxide.
The second dielectric metal oxide layer 44 may be formed by a conformal deposition process such as a chemical vapor deposition process or an atomic layer deposition process. The thickness of the second dielectric metal oxide layer 44 may be in a range from 1 nm to 20 nm, such as from 2 nm to 10 nm, although lesser and greater thicknesses may also be employed.
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The ferroelectric metal oxide material may be formed as vertically discrete material portions at levels of the backside recesses 43, and are not merged with each other vertically. Each discrete portion of the ferroelectric metal oxide material constitutes a discrete ferroelectric material portion 54. A vertical stack of discrete ferroelectric material portions 54 can be formed by interdiffusing the first dielectric metal oxide material and the second dielectric metal oxide material at interfaces between the first dielectric metal oxide layer 53L and the second dielectric metal oxide layer 44. The vertical stack of discrete ferroelectric material portions 54 comprises a ferroelectric alloy material including an alloy of the first dielectric metal oxide material and the second dielectric metal oxide material, and may have an average material composition of MαQγO(β+δ). In one embodiment, each of the discrete ferroelectric material portions 54 may have a cylindrical configuration having a vertical cylindrical inner sidewall and a vertical cylindrical outer sidewall.
In one embodiment, if the vertical semiconductor channel 60 comprises amorphous silicon prior to the anneal, then the anneal may be carried out at a sufficient temperature to simultaneously crystallize the amorphous silicon into polysilicon and to react the first dielectric metal oxide layer 53L and the second dielectric metal oxide layer 44. For example, the anneal may be carried out at a temperature of 650 to 950 degrees Celsius to form a polysilicon vertical semiconductor channel 60 and to form vertical stack of discrete ferroelectric material portions 54.
Furthermore, if the first dielectric metal oxide layer 53L and/or the second dielectric metal oxide layer 44 are deposited in the amorphous state and/or in a crystalline state that does not provide sufficient ferroelectric properties, then the ferroelectric material portions 54 may be crystallized during the alloying. The crystallization during alloying may impart texture to the ferroelectric material portions 54, which may improve their ferroelectric properties. Furthermore, the crystallization and texturing of the ferroelectric material portions 54 occurs during the alloying rather than during their deposition. Therefore, a crystalline seed layer is not required to form crystalline, textured ferroelectric material portions 54. This simplifies the formation process.
The discrete ferroelectric material portions 54 reduce cross talk between vertically adjacent memory cells relative to a continuous ferroelectric material layer. Furthermore, discrete ferroelectric material portions 54 are formed using a simple alloying of front and backside metal oxide layers without requiring a separate etching step to separate a ferroelectric layer into vertically discrete portions. This simplifies the formation process of the discrete ferroelectric material portions 54 and provides a more precise control of the ratio of the metal atoms (e.g., Hf:Zr ratio) in the ferroelectric material portions 54. The improve metal ratio control improves the ferroelectric performance of the ferroelectric material portions 54.
In one embodiment, the elevated temperature and the duration of the thermal anneal process can be selected such that unreacted remaining tubular portions of the second dielectric metal oxide layer 44 remain on the vertical stack of discrete ferroelectric material portions 54 around each memory opening 49. Remaining portions of the first dielectric metal oxide layer 53L that are not incorporated into the vertical stack of discrete ferroelectric material portions 54 comprise a vertical stack of discrete dielectric material portions 53. The vertical stack of discrete dielectric material portions 53 comprise and/or consist essentially of the first dielectric metal oxide material, and is vertically interlaced with the vertical stack of discrete ferroelectric material portions 54. The discrete dielectric material portions 53 may comprise non-ferroelectric dielectric material.
In one embodiment, each discrete dielectric material portion 53 within the vertical stack of discrete dielectric material portions 53 is in direct contact with a sidewall of a respective insulating layer 32 of the insulating layers 32. In one embodiment, each discrete dielectric material portion 53 has a first lateral thickness lt1 between a respective inner sidewall and a respective outer sidewall, and each of the discrete ferroelectric material portions 54 has a second lateral thickness lt2 between a respective inner sidewall and the respective outer sidewall. In one embodiment, the second lateral thickness lt2 is greater than the first lateral thickness lt1.
In one embodiment, the inner sidewalls of the discrete dielectric material portions 53 and the inner sidewalls of the discrete ferroelectric material portions 54 are vertically coincident. As used herein, a first surface and a second surface are “vertically coincident” if the second surface underlies or overlies the first surface and if there exists a vertical plane including the first surface and the second surface. In one embodiment, each inner sidewall of the discrete ferroelectric material portions 54 comprises a respective first inner cylindrical sidewall, each outer sidewall of the discrete ferroelectric material portions 54 comprises a respective first outer cylindrical sidewall, each inner sidewall of the discrete dielectric material portions 53 comprises a respective second inner cylindrical sidewall, and each outer sidewall of the discrete dielectric material portions 53 comprises a respective second outer cylindrical sidewall.
Each contiguous combination of a vertical stack of discrete ferroelectric material portions 54, a vertical stack of discrete dielectric material portions 53, a vertical semiconductor channel 60, a dielectric core 62, and a drain region 63 located in a respective memory opening 49 constitutes a memory opening fill structure 58, which is derived from a respective in-process memory opening fill structure 58′. Each support pillar structure 20 may comprise a respective combination of a vertical stack of discrete ferroelectric material portions 54, a vertical stack of discrete dielectric material portions 53, a vertical semiconductor channel 60, a dielectric core 62, and a drain region 63 after the processing steps of
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Subsequently, a metal fill material is deposited in the plurality of backside recesses 43, on the sidewalls of the at least one the backside trench 79, and over the top surface of the contact-level dielectric layer 73 to form a metallic fill material layer (not shown). The metallic fill material can be deposited by a conformal deposition method, which can be, for example, chemical vapor deposition (CVD), atomic layer deposition (ALD), electroless plating, electroplating, or a combination thereof. In one embodiment, the metallic fill material layer can consist essentially of at least one elemental metal. The at least one elemental metal of the metallic fill material layer can be selected, for example, from tungsten, cobalt, ruthenium, titanium, and tantalum. In one embodiment, the metallic fill material layer can consist essentially of a single elemental metal. In one embodiment, the metallic fill material layer can be deposited employing a fluorine-containing precursor gas such as WF6. In one embodiment, the metallic fill material layer can be a tungsten layer including a residual level of fluorine atoms as impurities. The metallic fill material layer is spaced from the insulating layers 32 and the memory stack structures 55 by the metallic barrier layer, which blocks diffusion of fluorine atoms therethrough.
A plurality of electrically conductive layers 46 can be formed in the plurality of backside recesses 43, and a continuous metallic material layer can be formed on the sidewalls of each backside trench 79 and over the contact-level dielectric layer 73. Each electrically conductive layer 46 includes a portion of the metallic barrier layer and a portion of the metallic fill material layer that are located between a vertically neighboring pair of dielectric material layers such as a pair of insulating layers 32. The continuous metallic material layer includes a continuous portion of the metallic barrier layer and a continuous portion of the metallic fill material layer that are located in the backside trenches 79 or above the contact-level dielectric layer 73. The deposited metallic material of the continuous electrically conductive material layer is etched back from the sidewalls of each backside trench 79 and from above the contact-level dielectric layer 73, for example, by an isotropic wet etch, an anisotropic dry etch, or a combination thereof. Each remaining portion of the deposited metallic material in the backside recesses 43 constitutes an electrically conductive layer 46. Each electrically conductive layer 46 can be a conductive line structure through which the memory opening fill structures 58 vertically extend. Thus, the sacrificial material layers 42 are replaced with the electrically conductive layers 46.
In one embodiment, each of the discrete ferroelectric material portions 54 comprises a respective outer sidewall that laterally protrudes outward by a greater lateral distance from a vertical axis VA passing through a geometrical center GC of the memory opening fill structure 58 than interfaces between the memory opening fill structure 58 and the insulating layers 32 laterally protrude from the vertical axis VA. As used herein, a “geometrical center” of a structure or a volume refers to a point corresponding to the center of gravity for an hypothetical object having a uniform density and having a same shape and location as the structure or as the volume. In one embodiment, second dielectric metal oxide layers 44 comprising the second dielectric metal oxide material are interposed between vertically neighboring pairs of an insulating layer 32 among the insulating layers 32 and an electrically conductive layer 46 of the electrically conductive layers 46.
In one embodiment, each of the second dielectric metal oxide layers 44 is in direct contact with an outer sidewall of a respective one of the discrete ferroelectric material portions 54. In one embodiment, one, a plurality and/or each of the second dielectric metal oxide layers 44 comprises a first horizontally-extending portion 44A contacting a bottom surface of an overlying insulating layer 32 of the insulating layers 32, a second horizontally-extending portion 44B contacting a top surface of an underlying insulating layer 32 of the insulating layers 32, and a tubular portion 44C connecting the first horizontally-extending portion 44A and the second horizontally-extending portion 44B and laterally surrounding the memory opening fill structure 58. In one embodiment, the cylindrical portion 44C has a uniform lateral thickness between an inner sidewall and an outer sidewall, the first horizontally-extending portion 44A and the second horizontally-extending portion 44B have a uniform vertical thickness, and the uniform lateral thickness is less than the uniform vertical thickness.
Generally, the in-process memory opening fill structures 58′ are converted into a respective memory opening fill structure 58, and electrically conductive layers 46 are formed in remaining volumes of the backside recesses 43 around the vertical stacks of discrete ferroelectric material portions 54 in the memory opening fill structures 58. Each vertical stack of discrete ferroelectric material portions 54 may be in direct contact with cylindrical surface segments of a respective vertical semiconductor channel 60.
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Each electrically conductive layer 46 can function as a combination of a plurality of control gate electrodes located at a same level and a word line electrically interconnecting, i.e., electrically shorting, the plurality of control gate electrodes located at the same level. The plurality of control gate electrodes within each electrically conductive layer 46 are the control gate electrodes for the vertical memory devices including the memory stack structures 55. In other words, each electrically conductive layer 46 can be a word line that functions as a common control gate electrode for the plurality of vertical memory devices. In one embodiment, the removal of the continuous electrically conductive material layer 46L can be selective to the material of the second dielectric metal oxide layer 44 (if present). Alternatively, vertically-extending portions of the second dielectric metal oxide layer 44 may be removed from inside the backside trenches 79.
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An insulating material layer can be formed in the backside trenches 79 and over the contact-level dielectric layer 73 by a conformal deposition process. Exemplary conformal deposition processes include, but are not limited to, chemical vapor deposition and atomic layer deposition. The insulating material layer includes an insulating material such as silicon oxide, silicon nitride, a dielectric metal oxide, an organosilicate glass, or a combination thereof. In one embodiment, the insulating material layer can include silicon oxide. The insulating material layer can be formed, for example, by low pressure chemical vapor deposition (LPCVD) or atomic layer deposition (ALD). The thickness of the insulating material layer can be in a range from 1.5 nm to 60 nm, although lesser and greater thicknesses can also be employed. In one embodiment, the insulating material layer can be formed directly on surfaces of the second dielectric metal oxide layers 44 and directly on the sidewalls of the electrically conductive layers 46.
An anisotropic etch is performed to remove horizontal portions of the insulating material layer from above the contact-level dielectric layer 73 and at the bottom of each backside trench 79. Each remaining portion of the insulating material layer constitutes an insulating spacer 74. A backside cavity 79′ is present within a volume surrounded by each insulating spacer 74. A top surface of the semiconductor material layer 10 can be physically exposed at the bottom of each backside trench 79. A backside contact via structure 76 can be formed within each backside cavity 79′. Each contact via structure 76 can fill a respective cavity 79′. The contact via structures 76 can be formed by depositing at least one conductive material in the remaining unfilled volume (i.e., the backside cavity 79′) of the backside trench 79. For example, the at least one conductive material can include a conductive liner 76A and a conductive fill material portion 76B. The conductive liner 76A can include a conductive metallic liner such as TiN, TaN, WN, MoN, TiC, TaC, WC, an alloy thereof, or a stack thereof. The thickness of the conductive liner 76A can be in a range from 3 nm to 30 nm, although lesser and greater thicknesses can also be employed. The conductive fill material portion 76B can include a metal or a metallic alloy. For example, the conductive fill material portion 76B can include W, Cu, Al, Co, Ru, Ni, an alloy thereof, or a stack thereof.
The at least one conductive material can be planarized employing the contact-level dielectric layer 73 overlying the alternating stack (32, 46) as a stopping layer. If chemical mechanical planarization (CMP) process is employed, the contact-level dielectric layer 73 can be employed as a CMP stopping layer. Each remaining continuous portion of the at least one conductive material in the backside trenches 79 constitutes a backside contact via structure 76. The backside contact via structure 76 extends through the alternating stack (32, 46), and contacts a top surface of the source region 61. If a second dielectric metal oxide layer 44 is employed, the backside contact via structure 76 can contact a sidewall of the second dielectric metal oxide layer 44.
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In one alternative embodiment, the peripheral devices 700 are formed on a separate substrate and then bonded to the memory devices. In that case, the peripheral device contact via structures 8P may be omitted. In another alternative embodiment, the peripheral devices 700 may be formed underneath the alternating stack (32, 46). In that case, a horizontal source line may be provided in contact with a side of the vertical semiconductor channels 60 and the peripheral device contact via structures 8P may extend through the alternating stack (32, 46).
Generally, the second exemplary structure can be derived from the first exemplary structure illustrated in
In one embodiment, the metal oxide layer 153L may comprise a ferroelectric metal oxide in as-deposited condition (e.g., as-deposited orthorhombic hafnium oxide). In this embodiment, the metal oxide layer 153L is deposited as ferroelectric metal oxide (e.g., ferroelectric hafnium and/or zirconium oxide) and includes a vertical stack of tubular portions 153, which are tubular ferroelectric material portions of the metal oxide layer 153L that are located at the levels of the sacrificial material layers 42.
In an alternative embodiment, the metal oxide layer 153L may comprise a non-ferroelectric metal oxide in the as-deposited condition, and is then converted to include ferroelectric portions. For example, the metal oxide layer 153L may comprise non-ferroelectric hafnium oxide having a monoclinic crystal phase, which is subsequently converted into a ferroelectric tetragonal and/or orthorhombic crystal phase by annealing and/or by stress induced by an applied voltage or current. In another example, the metal oxide layer 153L may comprise amorphous, stoichiometric aluminum oxide (i.e., AlO1.5) which is converted to an amorphous ferroelectric oxygen depleted non-stoichiometric aluminum oxide (i.e., AlO1.5-z, where z>0). In this embodiment, the tubular portions 153 are not ferroelectric.
The metal oxide layer 153L can be formed by a conformal deposition process such as a chemical vapor deposition process or an atomic layer deposition process. The thickness of the metal oxide layer 153L may be in a range from 1 nm to 20 nm, such as from 2 nm to 10 nm, although lesser and greater thicknesses may also be employed. A memory cavity 49′ is present within an unfilled volume of each memory opening 49.
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In one embodiment, the oxygen-gettering liner 46A may comprise an electrically conductive metal or metal nitride material, such as platinum, titanium, tantalum, hafnium, aluminum, TaN or TiN. The oxygen-gettering liner 46A may be deposited by a conformal deposition process, such as a chemical vapor deposition process or an atomic layer deposition process. The thickness of the oxygen-gettering liner 46A may be in a range from 2 nm to 20 nm, such as from 4 nm to 10 nm, although lesser and greater thicknesses may also be employed.
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In one embodiment, each of the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 has a radial oxygen concentration gradient such that an atomic percentage of oxygen atoms decreases with a radial distance from a vertical axis VA passing through a geometrical center GC of the memory opening fill structure 58.
Portions of each metal oxide layers 153L that are not converted into the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 comprise a vertical stack of discrete spacer material portions 155. In other words, portions the metal oxide layer 153L located at levels of the insulating layers 32 comprise dielectric spacer material portions 155 after formation of the vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154. The dielectric spacer material portions 155 may comprise a stoichiometric metal oxide material which is either ferroelectric or non-ferroelectric. For example, if the metal oxide layer 153L is ferroelectric (e.g., it comprises ferroelectric hafnium and/or zirconium oxide) then the dielectric spacer material portions 155 are ferroelectric (i.e., comprise dielectric spacer ferroelectric material portions). In contrast, if the metal oxide layer 153L is non-ferroelectric (e.g., it comprises amorphous stoichiometric aluminum oxide), then the dielectric spacer material portions 155 are non-ferroelectric metal oxide material portions.
The vertical stack of discrete spacer material portions 155 is interlaced with the vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 along a vertical direction. In one embodiment, the discrete spacer material portions 155 have a material composition that differs from a material composition of the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 by a reduced density of oxygen vacancies.
In one embodiment, the discrete spacer material portions 155 have a first average density of oxygen vacancies, the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 have a second average density of oxygen vacancies that is greater than the first average density. In one embodiment, a ratio of the second average density of oxygen vacancies to the first average density of oxygen vacancies is at least 1.2, and/or at least 2.0, and/or at least 3.0, and/or at least 10, and/or at least 100. In one embodiment, the atomic concentration of oxygen vacancies in the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 may be in a range from 1.0×1015/cm3 to 1.0×1020/cm3, such as from 1.0×1017/cm3 to 1.0×1019/cm3, although lesser and greater atomic concentration of oxygen vacancies may also be employed.
In one embodiment, the non-stoichiometric oxygen-deficient ferroelectric material portions 154 comprise non-stoichiometric oxygen-deficient ferroelectric hafnium oxide portions having an orthorhombic crystal structure and a formula HfO2-x, where x>0. For example, 1.0×1015/cm3≤x≤1.0×1020/cm3. In another embodiment, the non-stoichiometric oxygen-deficient ferroelectric material portions 154 comprise non-stoichiometric oxygen-deficient ferroelectric zirconium oxide portions having a formula ZrO2-y, where y>0. For example, 1.0×1015/cm3≤y≤1.0×1020/cm3. In another embodiment, the non-stoichiometric oxygen-deficient ferroelectric material portions 154 comprise non-stoichiometric oxygen-deficient ferroelectric aluminum oxide portions having a formula AlO1.5-y, where y>0. For example, 1.0×1015/cm3≤y≤1.0×1020/cm3. The aluminum oxide portions may be crystalline or amorphous.
In one embodiment, the discrete spacer material portions 155 comprise stoichiometric ferroelectric hafnium oxide portions having an orthorhombic crystal structure and a formula HfO2. In another embodiment, the discrete spacer material portions 155 comprise stoichiometric ferroelectric zirconium oxide portions having a formula ZrO2. In another embodiment, the discrete spacer material portions 155 comprise non-ferroelectric stoichiometric aluminum oxide portions having a formula AlO1.5.
Each combination of a vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154, a vertical stack of discrete spacer material portions 155, a vertical semiconductor channel 60, a dielectric core 62, and a drain region 63 that is formed within a respective memory opening 49 constitutes a memory opening fill structure 58. Thus, each in-process memory opening fill structure 58″ is converted into a memory opening fill structure 58 upon replacement of each metal oxide layer 153L with a combination of a vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 and a vertical stack of discrete spacer material portions 155.
In one embodiment, outer sidewalls of the vertical stack of discrete spacer material portions 155 are vertically coincident with outer sidewalls of the vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 within each memory opening fill structure 58. In one embodiment, inner sidewalls of the vertical stack of discrete spacer material portions 155 are vertically coincident with inner sidewalls of the vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 within each memory opening fill structure 58.
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Generally, oxygen-depleted non-stoichiometric metal oxide materials may display higher electrical polarization due to stronger ferroelectric phase formation and may stabilize the ferroelectric phase (e.g., the orthorhombic phase for hafnium oxide). The oxygen-depleted non-stoichiometric ferroelectric metal oxide materials provide many advantages for the purpose of use in a ferroelectric memory device. Such oxygen-depleted non-stoichiometric ferroelectric metal oxide materials may be employed as undoped materials in which careful dopant concentration adjustment is not needed. Further, such oxygen-depleted non-stoichiometric ferroelectric metal oxide materials do not require phase engineering, and may even be employed as microcrystalline or amorphous materials in some applications (e.g., as amorphous oxygen-depleted aluminum oxide). Such oxygen-depleted non-stoichiometric ferroelectric metal oxide materials have low leakage current even for thicknesses less than 5 nm. Generally, such oxygen-depleted non-stoichiometric ferroelectric metal oxide materials do not induce grain boundary leakage due to amorphous or highly textured nature. Such oxygen-depleted non-stoichiometric ferroelectric metal oxide materials may be operated with lower switching voltages, and thus, with low power consumption, compared to non-oxygen-depleted ferroelectric materials. Further, depleted layers can be easily formed within such oxygen-depleted non-stoichiometric ferroelectric metal oxide materials using oxygen gettering control gate electrodes, which are capable of removing oxygen atoms from the oxygen-depleted non-stoichiometric ferroelectric metal oxide materials.
According to an aspect of the present disclosure, discrete portions of an oxygen-depleted non-stoichiometric ferroelectric metal oxide material can be formed using the oxygen-gettering liner 46A. The discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 may provide improved scalability, lower power consumption, faster switching, higher endurance, and/or easier integration compared to stoichiometric ferroelectric material portions.
Further, thermodynamic calculations indicate that oxygen vacancies lower energy of formation for ferroelectric orthorhombic and tetragonal ferroelectric phases from the more stable non-ferroelectric monoclinic phase for many ferroelectric metal oxide materials. As a result, highly polarizable discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 may be formed, which provide larger memory windows and lower power operation.
Formation of the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 of the second embodiment present disclosure does not require (but also does not preclude) use of any dopants (e.g., Al, Si or Zr dopants in orthorhombic hafnium oxide). Oxygen vacancies can cause undoped films of hafnium oxide or zirconium oxide (which may be non-ferroelectric) to exhibit ferroelectric behavior. As such, precise dopant control is not necessary. Further, even amorphous materials (which are not normally ferroelectric) may exhibit ferroelectric behavior due to oxygen deficiency. In such cases, precise phase control of the material of the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 may be unnecessary. Thus, the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 can provide robust ferroelectric films with a wide process window and improved performance over conventional ferroelectric materials.
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Each combination of a vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154, a vertical semiconductor channel 60, a dielectric core 62, and a drain region 63 that is formed within a respective memory opening 49 constitutes a memory opening fill structure 58. Thus, each in-process memory opening fill structure 58″ is converted into a memory opening fill structure 58 upon conversion of the tubular portions 153 into the vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154.
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According to various embodiments and drawings related to the first exemplary structure, a semiconductor memory device is provided, which comprises: an alternating stack (32, 46) of insulating layers 32 and electrically conductive layers 46; a memory opening 49 vertically extending through the alternating stack (32, 46); and a memory opening fill structure 58 located in the memory opening 49 and comprising a vertical semiconductor channel 60 and a vertical stack of discrete ferroelectric material portions 54 located at levels of the electrically conductive layers 46 and comprising a ferroelectric alloy material of a first dielectric metal oxide material and a second dielectric metal oxide material, and a vertical stack of discrete dielectric material portions comprising the first dielectric metal oxide material and vertically interlaced with the vertical stack of discrete ferroelectric material portions.
In one embodiment, each of the discrete ferroelectric material portions 54 comprises a respective outer sidewall that laterally protrudes outward by a greater lateral distance from a vertical axis VA passing through a geometrical center GC of the memory opening fill structure 58 than interfaces between the memory opening fill structure 58 and the insulating layers 32 laterally protrude from the vertical axis VA.
In one embodiment, each discrete dielectric material portion 53 within the vertical stack of discrete dielectric material portions 53 is in direct contact with a sidewall of a respective insulating layer 32 within the insulating layers 32. In one embodiment, each discrete dielectric material portion 53 has a first lateral thickness between a respective inner sidewall and a respective outer sidewall; each of the discrete ferroelectric material portions 54 has a second lateral thickness between a respective inner sidewall and the respective outer sidewall; and the second lateral thickness is greater than the first lateral thickness. In one embodiment, the inner sidewalls of the discrete dielectric material portions 53 and the inner sidewalls of the discrete ferroelectric material portions 54 are vertically coincident.
In one embodiment, each inner sidewall of the discrete ferroelectric material portions 54 comprises a respective first inner cylindrical sidewall; each outer sidewall of the discrete ferroelectric material portions 54 comprises a respective first outer cylindrical sidewall; each inner sidewall of the discrete dielectric material portions 53 comprises a respective second inner cylindrical sidewall; and each outer sidewall of the discrete dielectric material portions 53 comprises a respective second outer cylindrical sidewall.
In one embodiment, second dielectric metal oxide layers 44 comprising the second dielectric metal oxide material are interposed between vertically neighboring pairs of an insulating layer 32 of the insulating layers 32 and an electrically conductive layer 46 of the electrically conductive layers 46. In one embodiment, each of the second dielectric metal oxide layers 44 is in direct contact with an outer sidewall of a respective one of the discrete ferroelectric material portions 54.
In one embodiment, one of the second dielectric metal oxide layers 44 comprises: a first horizontally-extending portion 44A contacting a bottom surface of an overlying insulating layer 32 of the insulating layers 32; a second horizontally-extending portion 44B contacting a top surface of an underlying insulating layer 32 of the insulating layers 32; and a tubular portion 44C connecting the first horizontally-extending portion and the second horizontally-extending portion and laterally surrounding the memory opening fill structure 58.
In one embodiment, the cylindrical portion 44C has a uniform lateral thickness between an inner sidewall and an outer sidewall; the first horizontally-extending portion 44A and the second horizontally-extending portion 44B have a uniform vertical thickness; and the uniform lateral thickness is less than the uniform vertical thickness. In one embodiment, the electrically conductive layers 46 are in direct contact with an outer sidewall of a respective one of the discrete ferroelectric material portions 54.
In one embodiment, an entirety of the outer sidewall of each of the discrete ferroelectric material portions 54 is in direct contact with a cylindrical sidewall of a respective one of the electrically conductive layers 46.
In one embodiment, the vertical stack of discrete ferroelectric material portions 54 is in direct contact with cylindrical surface segments of the vertical semiconductor channel 60.
In one embodiment, the memory opening fill structure 58 further comprises an insulating barrier layer 56 located between the vertical stack of discrete ferroelectric material portions 54 and the vertical semiconductor channel 60.
In one embodiment, the discrete ferroelectric material portions 54 comprise hafnium zirconium oxide or aluminum doped hafnium oxide; and the discrete dielectric material portions 53 consist essentially of hafnium oxide.
According to various embodiments and drawings related to the second exemplary structure and the third exemplary structure, a semiconductor memory device is provided, which comprises: an alternating stack (32, 46) of insulating layers 32 and electrically conductive layers 46; a memory opening 49 vertically extending through the alternating stack (32, 46); and a memory opening fill structure 58 located in the memory opening 49 and comprising a vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 and a vertical semiconductor channel 60. The discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 are vertically spaced apart from each other; and each of the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 is in direct contact with a sidewall of a respective oxygen-gettering liner 46A.
In one embodiment, each of the electrically conductive layers 46 comprises the respective oxygen-gettering liner 46A comprising a first conductive material and conductive fill material layer 46B comprising a second conductive material that is different from the first conductive material.
In one embodiment, the first conductive material comprises TaN or TiN. In another embodiment, the first conductive material comprises an elemental metal that is selected from platinum, titanium, tantalum, hafnium, or aluminum.
In one embodiment, the oxygen-gettering liner 46A of each of the electrically conductive layers 46 is in direct contact with a respective pair of insulating layers 32 of the insulating layers of the alternating stack.
In one embodiment, each of the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 has a radial oxygen concentration gradient such that an atomic percentage of oxygen atoms decreases with a radial distance from a vertical axis VA passing through a geometrical center GC of the memory opening fill structure 58.
In one embodiment, the memory opening fill structure 58 further comprises a vertical stack of discrete spacer material portions 155 that is interlaced with the vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 along a vertical direction. In one embodiment, the discrete spacer material portions 155 comprise a ferroelectric material having a material composition that differs from a material composition of the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 by a reduced density of oxygen vacancies.
In one embodiment, outer sidewalls of the vertical stack of discrete spacer material portions 155 are vertically coincident with outer sidewalls of the vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154; and inner sidewalls of the vertical stack of discrete spacer material portions 155 are vertically coincident with inner sidewalls of the vertical stack of discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154.
In one embodiment, each of the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 comprises: a respective top surface that contacts a bottom surface of a respective overlying insulating layer 32 of the insulating layers 32; and a respective bottom surface that contacts a top surface of a respective underlying insulating layer 32 of the insulating layers 32. In one embodiment, the vertical semiconductor channel 60 is in direct contact with sidewalls of the insulating layers 32 within the alternating stack (32, 46).
In one embodiment, the discrete non-stoichiometric oxygen-deficient ferroelectric material portions 154 have a formula selected from HfO2-x, ZrO2-x, or AlO1.5-x, where x>0.
The various embodiments of the present disclosure may be employed to provide ferroelectric memory devices including ferroelectric material portions that provide superior ferroelectric characteristics and/or are formed using a simpler process than the prior art devices. The various embodiments of the present disclosure may be employed to enhance performance of ferroelectric memory devices, to increase the process yield of the ferroelectric memory devices, and/or to reduce the process complexity and turn-around time during manufacturing.
Although the foregoing refers to particular preferred embodiments, it will be understood that the disclosure is not so limited. It will occur to those of ordinary skill in the art that various modifications may be made to the disclosed embodiments and that such modifications are intended to be within the scope of the disclosure. Compatibility is presumed among all embodiments that are not alternatives of one another. The word “comprise” or “include” contemplates all embodiments in which the word “consist essentially of” or the word “consists of” replaces the word “comprise” or “include,” unless explicitly stated otherwise. Where an embodiment employing a particular structure and/or configuration is illustrated in the present disclosure, it is understood that the present disclosure may be practiced with any other compatible structures and/or configurations that are functionally equivalent provided that such substitutions are not explicitly forbidden or otherwise known to be impossible to one of ordinary skill in the art. All of the publications, patent applications and patents cited herein are incorporated herein by reference in their entirety.