This application claims priority of Taiwanese Application No. 104120531, filed on Jun. 25, 2015.
The disclosure relates to an inductor chip and a method of making the same, more particularly to a magnetic core inductor chip with a core made from a magnetic material and a coil deposited on the core.
There are three types of inductors namely thin film type inductors, multilayered type inductors, and wire wound type inductors, which are commercially available.
TW patent NO. 1430300 discloses a multilayered type inductor which includes a plurality of insulator layers, and a plurality of patterned metal layers. The insulating layers and the patterned metal layers cooperatively define a core and a coil of the multilayered type inductor.
A method of making the multilayered type inductor includes steps of: plating the patterned metal layers on the corresponding insulating layers; forming holes in each of the insulating layers; and filling a conducting material into the holes such that the patterned metal layers are electro-connected to one another through the conducting material.
The aforesaid method is relatively complicated. In order to simplify the structure of the multilayered type inductor and the method of making the same, TW patent application publication No. 201440090 A discloses a magnetic multilayered type inductor (see
The method of making the multilayered type inductor includes the steps of: laminating a first circuit plate 110, a second circuit plate 120, a third circuit plate 130 and a fourth circuit plate 140 (see
Referring to
The magnetic multilayered inductor thus formed has undesired non-ohmic contact and Joule-heating, which may be induced at the interfaces between every two adjacent ones of the first, second, third and fourth circuit patterns 112, 122, 132, 142.
Therefore, an object of the disclosure is to provide a magnetic core inductor chip that can alleviate at least one of the drawbacks of the prior art.
According to the disclosure, the magnetic core inductor chip includes a core and a coil.
The core is in the form of a single piece of a magnetic material.
The coil is deposited on and surrounds the core and has structural characteristics indicative of the first coil being formed on the core by deposition techniques.
Another object of the disclosure is to provide methods of making a magnetic core inductor chip that can overcome at least one of the aforesaid drawbacks of the prior art.
According to the disclosure, a method of making a magnetic core inductor chip includes:
forming at least one first patterned photoresist layer on a magnetic wafer such that the magnetic wafer has an etched portion exposed from the first patterned photoresist layer, the first patterned photoresist layer having a peripheral end part and at least one passive-component-defining unit, the passive-component-defining unit having a connecting part connected to the peripheral end part, a plurality of breaking-line-defining protrusions protruding from the connecting part, and a plurality of chip-defining parts;
etching the etched portion to pattern the magnetic wafer so as to form a magnetic patterned wafer; and
removing the first patterned photoresist layer from the magnetic patterned wafer, such that the magnetic patterned wafer has a peripheral end portion and at least one passive-component unit that includes a connecting portion, a breaking line, and a plurality of spaced apart chip bodies, the connecting portion being connected to the peripheral end portion, the breaking line having a plurality of connecting tabs that are spaced apart from one another, each of the connecting tabs being disposed between and interconnecting the connecting portion and a respective one of the chip bodies;
forming a seed layer on each of the chip bodies of the magnetic patterned wafer, such that the seed layer is disposed on and around each of the chip bodies;
forming a second patterned photoresist layer on the seed layer on each of the chip bodies, such that the seed layer has a exposed region that is exposed from the second patterned photoresist layer, and a covered region that is covered with the seed layer;
depositing a metal layer on the exposed region of the seed layer so as to form a coil on and around each of the chip bodies of the magnetic patterned wafer through deposition techniques;
removing the covered region of the seed layer from the magnetic patterned wafer; and
breaking the magnetic patterned wafer along the breaking line so as to form a plurality of magnetic core inductor chips.
According to the disclosure, another method of making a magnetic core inductor chip includes:
providing a punching die having a plurality of die holes that are arranged in an array;
punching a magnetic wafer using the punching die so as to form a magnetic patterned wafer that has a peripheral end portion and at least one core chip unit, the core chip unit including a connecting portion, a breaking line, and a plurality of spaced apart chip bodies, the connecting portion being connected to the peripheral end portion and being spaced apart from the chip bodies by a tab-accommodating space along a direction, the breaking line having a plurality of connecting tabs that are spaced apart from one another and that are disposed in the tab-accommodating space, each of the connecting tabs interconnecting the connecting portion and a respective one of the chip bodies;
forming a seed layer on each of the chip bodies of the magnetic patterned wafer, such that the seed layer is disposed on and around each of the chip bodies;
forming a patterned photoresist layer on the seed layer on each of the chip bodies, such that the seed layer has a exposed region that is exposed from the patterned photoresist layer, and a covered region that is covered with the patterned photoresist layer;
depositing a metal layer on the exposed region of the seed layer so as to form a coil on and around each of the chip bodies of the magnetic patterned wafer through deposition techniques;
removing the covered region of the seed layer from the magnetic patterned wafer; and
breaking the magnetic patterned wafer along the breaking line so as to form a plurality of magnetic core inductor chips.
Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiments with reference to the accompanying drawings, of which:
Before the disclosure is described in greater detail, it should be noted that like elements are denoted by the same reference numerals throughout the disclosure.
Referring to
The core 2 is in the form of a single piece of a magnetic material.
The first coil 3 is deposited on and surrounds an outer surface of the core 2, and has structural characteristics indicative of the first coil 3 being formed on the core 2 by deposition techniques.
The core 2 further has top and bottom surfaces 21, 22, and two opposite side surfaces 23 extending from the top surface 21 to the bottom surface 22. The first coil 3 surrounds the top and bottom and side surfaces 21, 22, 23 of the core 2.
The magnetic material is selected from the group consisting of a magnetic metal material and a magnetic ceramic material. The magnetic metal material is selected from the group consisting of iron (Fe), cobalt (Co), and nickel (Ni). The magnetic ceramic material is, e.g., magnetite (Fe3O4) with an inverse spinel structure. Since the core 2 is a single piece, it has an excellent mechanical strength, and does not induce the non-ohmic contact as encountered in the prior art.
It should be noted that, in this embodiment, the core 2 may have a size ranging from 0.2 mm×0.1 mm×0.1 mm to 0.6 mm×0.3 mm×0.3 mm. In certain embodiments, the core 2 may have a size ranging from 0.2 mm×0.1 mm×0.1 mm to 0.4 mm×0.2 mm×0.2 mm.
In certain embodiments, the first coil 3 includes a first seed layer (not shown) deposited on the core 2, and a first metal layer (not shown) that is deposited on the first seed layer through deposition techniques, e.g., plating techniques.
Referring to
Referring to
Referring to
In certain embodiments, the second coil 4 includes a second seed layer (not shown) deposited on the insulator layer 5, and a second metal layer (not shown) that is deposited on the second seed layer through deposition techniques, e.g., plating techniques.
It is noted that the production of the magnetic core inductor chip of the disclosure may use MEMS manufacturing techniques.
The following description illustrates a method of making the magnetic core inductor chip of the first embodiment of the disclosure, and should not be construed as limiting the scope of the disclosure. The method includes the steps of S1 to S8.
In step S1 (see
As shown in
In the method of making the first embodiment, two first patterned photoresist layers 71 are respectively formed on top and bottom surfaces 603, 604 of the wafer 60, and the first patterned photoresist layers 71 formed on the top and bottom surfaces are symmetrical to each other (see
It should be noted that each of the breaking-line-defining protrusions 7122 may be connected to or spaced apart from a respective one of the chip-defining parts 7123.
As shown in
As mentioned above, the first patterned photoresist layers 71 formed on the top and bottom surfaces 603, 604 are symmetrical to each other, so that the to-be-partially-etched regions 602 and the to-be-fully-etched regions 601 of the top surface 603 are symmetrical to the to-be-partially-etched regions 602 and the to-be-fully-etched regions 601 of the bottom surface 604.
As shown in
In step S3 (see
It is noted that each of the chip bodies is to serve as the core 2 (see
The shape of the connecting tabs 6114 thus formed can be controlled based on actual requirements by varying the shape of the breaking-line-defining protrusions 7122. In one embodiment, referring back to
In step S4 (see
In step S5 (see
In step S6 (see
The first seed layer 31 may be made from a catalytically active material (e.g., a catalytically active metal) or a conductive material. When the first seed layer 31 is made from the catalytically active material, the first metal layer 32 is formed through chemical plating (or electroless plating) techniques. When the first seed layer 31 is made from the conductive material, the first metal layer 32 is formed through electro-plating techniques. The catalytically active material is selected from the group consisting of Pt, Pd, Au and Ag. The conductive material is selected from the group consisting of Cr, Ni, Ti, W and Mo.
In step S7 (see
It should be noted that the second patterned photoresist layer 73 (see
In step S8 (see
In certain embodiments, when the magnetic wafer 60 is made from a metal, an insulator film (not shown) is needed to be formed on each of the chip bodies 2 before the deposition of the first seed layer 31 thereon so as to prevent short-circuit between each of the chip bodies 2 and the first coil 3.
Referring to
Referring to
Referring to
The second seed layer 41 may be made from a catalytically active material or a conductive material. When the second seed layer 41 is made from the made from the catalytically active material, the second metal layer 42 is formed through chemical plating (or electroless plating) techniques. When the second seed layer 41 is made from the conductive material, the second metal layer 42 is formed through electro-plating techniques. The catalytically active material is selected from the group consisting of Pt, Pd, Au and Ag. The conductive material is selected from the group consisting of Cr, Ni, Ti, W and Mo.
Another method of making the magnetic core inductor chip of the first embodiment of the disclosure is illustrated in the following. The method includes the steps of s1 to s7.
In step s1 (see
In step s2 (see
In step s3 (see
In step s4 (see
In step s5 (see
In step s6 (see
In step s7 (see
The magnetic wafer 60 may be made from a magnetic metal material or a magnetic ceramic green. When the magnetic wafer 60 is made from the magnetic ceramic green, the method further comprises sintering the chip bodies 2 after the chip bodies 2 are separated from the connecting portion 6111.
In summary, the methods of the present disclosure may be advantageous over the prior art in reducing the steps of making the magnetic core inductor chip.
Furthermore, the core 2 of the magnetic core inductor chip of the present disclosure is in the form of a single piece. As such, the core 2 of the magnetic core inductor chip of the present disclosure has a higher mechanical strength than that of the conventional multilayered type inductor.
While the disclosure has been described in connection with what are considered the exemplary embodiments, it is understood that this disclosure is not limited to the disclosed embodiments but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
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104120531 A | Jun 2015 | TW | national |
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Search Report in Taiwanese Patent Application No. 104120531 dated Feb. 15, 2017, with English translation. 2 pages. |
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Number | Date | Country | |
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20160379749 A1 | Dec 2016 | US |