This application claims priority to German Application No. 103 31 030.4 filed Jul. 9, 2003, which is incorporated herein, in its entirety, by reference.
The present invention relates to a method for fabricating a trench structure, in particular a trench capacitor with an insulation collar, which is electrically connected to a substrate on one side via a buried contact.
Although applicable in principle to any desired integrated circuits, the present invention and the problem area on which it is based are explained with regard to integrated memory circuits in silicon technology.
In
Provided in the central and upper region of the trenches G1, G2 are peripheral insulation collars 10a, 10b, above which are provided buried contacts 15a, 15b, which are in electrical contact with the conductive fillings 20a, 20b and the adjoining semiconductor substrate 1. The buried contacts 15a, 15b are connected to the semiconductor substrate 1 only on one side (cf.
This enables a very high packing density of the trench capacitors GK1, GK2 and of the associated selection transistors, which will now be explained. In this case, reference is made principally to the selection transistor which is associated with the trench capacitor GK2, since only the drain region D1 or the source region S3, respectively, of adjacent selection transistors is depicted. The selection transistor associated with the trench capacitor GK2 has a source region S2, a channel region K2 and a drain region D2. The source region S2 is connected via a bit line contact BLK to a bit line (not shown) arranged above an insulation layer I. The drain region D2 is connected to the buried contact 15b on one side. A word line WL2 having a gate stack GS2 and a gate insulator GI2 surrounding the latter runs above the channel region K2. The word line WL2 is an active word line for the selection transistor of the trench capacitor GK2.
Running parallel adjacent to the word line WL2 are word lines WL1 comprising gate stack GS1 and gate insulator GI1 and word line WL3 comprising gate stack GS3 and gate insulator GI3, which are passive word lines for the selection transistor of the trench capacitor GK2. Said word lines WL1, WL3 serve for driving selection transistors which are displaced in the third dimension with respect to the sectional illustration shown.
Reference symbol DT in
In this second arrangement possibility, the rows of trenches have alternating connection regions and insulation regions of the buried contacts, respectively. Thus, in the bottommost row of
In the text below, for reasons of clarity, a portrayal of the fabrication of the planar selection transistors is dispensed with and only the formation of the buried contact of the trench capacitor, which buried contact is connected on one side, is discussed in detail. Unless expressly mentioned otherwise, the steps of fabricating the planar selection transistors are the same as in the prior art.
FIGS. 3A-G are diagrammatic illustrations of successive method stages of a first exemplary method for fabricating a trench capacitor with an insulation collar, which is electrically connected to a substrate on one side via a buried contact.
In
A peripheral insulation collar 10 is provided in the upper and central region of the trench 5, the insulation collar being sunk into the trench 5 to exactly the same extent as the conductive filling 20. An exemplary material for the insulation collar 10 is silicon oxide, and polysilicon for the electrically conductive filling 20. However, other material combinations are also conceivable, of course.
A conductive filling 40 made of epitaxial polysilicon sunk under the top side OS is additionally provided. The conductive filling 40 thus represents a buried contact which is connected all around and is partly to be removed in this first example in order to form the later insulation region IS. In order, therefore, to realize the connection on one side of the region 40 to the semiconductor substrate 1, the “subtractive” method steps portrayed below are carried out.
In accordance with
Afterward, with reference to
With reference to
With reference to
In the case of the process state shown in
FIGS. 4A-I are diagrammatic illustrations of successive method stages of a second exemplary method for fabricating a trench capacitor with an insulation collar, which is electrically connected to a substrate on one side via a buried contact.
In
In contrast to
The conductive filling 40 is now in the upper in order to form the later connection region KS on one side. The “additive” method steps portrayed below are carried out for this purpose.
With reference to
In a subsequent process step illustrated in
In the subsequent process step shown in
This is followed, as shown in
In the subsequent process step, the uncovered region of the silicon nitride liner layer 100 is removed by means of a selective wet etching. This is shown in
With reference to
With reference to
In subsequent process steps known per se, the insulation collar 10 is then sunk in the insulation region IS and in the further electrically conductive filling 22 to below the top side OS of the semiconductor substrate 1 and an insulation region 250 is deposited and sunk, the insulation region likewise preferably comprising silicon oxide.
The trench capacitor with a connection on one side as shown in
It is noticeable in
The present invention specifies an improved method for fabricating such a trench capacitor connected on one side, a good process reliability being possible even with increasing aspect ratios.
One advantages of the method according to the invention is that it enables a precise definition of the connection region and, respectively, of the complimentary insulation region in the case of the respective buried contact of the trench capacitor. Both an additive creation of the buried contact (piecemeal construction) and a subtractive creation (piecemeal deconstruction) of the buried contact are made possible by the method according to the invention.
In one embodiment of the invention, there is a single-layered thin liner which enables a selective etching of the non-masked part of the trench filling and can itself be selectively removed, if necessary, after the etching.
In accordance with one preferred embodiment, as trench filling, provision is made of a capacitor dielectric in the lower and central trench region, an insulation collar in the central and upper trench region and an electrically conductive filling in the lower, central and upper trench region, the electrically conductive filling electrically contact-connecting the substrate in the upper trench region above the insulation collar and being sunk with respect to the top side of the substrate. The liner mask defines a contact region on one side and an insulation region on a different side of a buried contact, the insulation region of the buried contact being formed by replacing the removed part of the trench filling by an insulation material.
In accordance with a further preferred embodiment, as trench filling, provision is made of a capacitor dielectric in the lower and central trench region, an insulation collar in the central and upper trench region and as far as the top side of the hard mask opening, and an electrically conductive filling in the trench, which filling reaches as far as at least into the upper trench region with the insulation collar. The liner mask defines a contact region on one side and an insulation region on a different side of a buried contact, the contact region of the buried contact being formed by replacing the removed part of the trench filling by a further electrically conductive filling.
In accordance with a further preferred embodiment, the liner mask is removed before the replacement of the removed part of the trench filling.
In accordance with a further preferred embodiment, the liner comprises Al2O3.
In accordance with a further preferred embodiment, for removal, an oblique implantation of impurity ions onto the liner mask is once again carried out for altering the etching properties and the liner mask is subsequently removed by means of a third etching.
In accordance with a further preferred embodiment, the liner has a thickness of 15 to 25 nm.
In accordance with a further preferred embodiment, the liner is deposited and subsequently subjected to heat treatment.
In accordance with a further preferred embodiment, the implanted part of the liner is etched in an ammonia-containing etchant.
In accordance with a further preferred embodiment, the liner comprises Al2O3 and the liner mask is removed before the replacement of the removed part of the trench filling by means of hot phosphoric acid.
Exemplary embodiments of the invention are illustrated in the drawings and explained in more detail in the description below.
In the figures:
FIGS. 3A-G show illustrations of successive method stages of a first exemplary method for fabricating a trench capacitor with an insulation collar, which is electrically connected to a substrate on one side via a buried contact.
FIGS. 4A-I show illustrations of successive method stages of a second exemplary method for fabricating a trench capacitor with an insulation collar, which is electrically connected to a substrate on one side via a buried contact.
FIGS. 5A-F show illustrations of successive method stages of a fabrication method as first embodiment of the present invention.
FIGS. 6A-G show illustrations of successive method stages of a fabrication method as second embodiment of the present invention.
In the figures described below, identical reference symbols designate constituent parts identical or functionally identical to those in the figures described previously.
FIGS. 5A-F show successive method stages of a fabrication method as first embodiment of the present invention.
The process state shown in
In accordance with
Afterward, with reference to
This is utilized in accordance with
With reference to
In the case of the process state shown in
For this purpose, the region 501 of the liner 500 is selectively removed from the surface beforehand, which is done either by means of a renewed xenon implantation and etching in an ammonia-containing etchant or by means of an etching in hot phosphoric acid without a renewed xenon implantation.
Subsequent filling with an insulating oxide filling 45 and etching-back thereof creates the buried contact with the connection region KS and the insulation region IS as is shown in
FIGS. 6A-G show successive method stages of a fabrication method as second embodiment of the present invention.
The process state shown in
In accordance with
Afterward, with reference to
This is utilized in accordance with
With reference to
With reference to
In subsequent process steps known per se, the insulation collar 10 is then sunk in the insulation region IS and in the further electrically conductive filling 22 to below the top side OS of the semiconductor substrate 1 and an insulation region 250 is deposited and sunk, said insulation region likewise preferably comprising silicon oxide.
Thus, the trench capacitor shown in
Although the present invention has been described above on the basis of a preferred exemplary embodiment, it is not restricted thereto, but rather can be modified in diverse ways.
In particular, the selection of the layer materials is only by way of example and can be varied in many different ways.
Number | Date | Country | Kind |
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103 31 030.4 | Jul 2003 | DE | national |