Metal etching stop layer in magnetic tunnel junction memory cells
A method of forming integrated circuits includes forming Magnetic Tunnel Junction (MTJ) stack layers, depositing a conductive etch stop layer over the MTJ stack layers, depositing a conductive hard mask over the conductive etch stop layer, and patterning the conductive hard mask to form etching masks. The patterning is stopped by the conductive etch stop layer. The method further includes etching the conducive etch stop layer using the etching masks to define patterns, and etching the MTJ stack layers to form MTJ stacks.
1 . A method comprising:
depositing a plurality of layers;
depositing a conductive etch stop layer over the plurality of layers;
depositing a conductive hard mask layer over the conductive etch stop layer;
patterning the conductive hard mask layer, wherein the patterning the conductive hard mask layer is stopped by the conductive etch stop layer;
etching portions of the conductive etch stop layer, with the etched portion of the conductive etch stop layer being exposed through remaining portions of the conductive hard mask layer;
etching the plurality of layers using the conductive hard mask layer as an etching mask to define patterns for the plurality of layers; and
forming a conductive feature over and contacting the conductive hard mask layer.
2 . The method of claim 1 , wherein the depositing the plurality of layers comprises:
depositing a bottom magnetic layer;
forming a tunnel dielectric layer over the bottom magnetic layer; and
depositing a top magnetic layer over the tunnel dielectric layer.
3 . The method of claim 2 , wherein the etching the plurality of layers is performed until a dielectric layer underlying the bottom magnetic layer is exposed.
4 . The method of claim 1 further comprising:
depositing a dielectric hard mask layer over the conductive hard mask layer; and
patterning the dielectric hard mask layer, wherein the patterned dielectric hard mask layer is used as an etching mask in the patterning the conductive hard mask layer.
5 . The method of claim 4 , wherein the patterning the conductive hard mask layer is performed using an etching gas, and wherein when the conductive hard mask layer is patterned, a top surface of the dielectric hard mask layer is exposed to the etching gas.
6 . The method of claim 4 , wherein the forming the dielectric hard mask layer comprises depositing an amorphous carbon layer.
7 . The method of claim 4 , wherein the forming the dielectric hard mask layer comprises depositing a silicon oxide layer or a silicon nitride layer.
8 . The method of claim 1 , wherein the depositing the conductive etch stop layer comprises depositing a metal-containing material selected from the group consisting essentially of tungsten, ruthenium, tungsten carbide, and combinations thereof.
9 . The method of claim 8 , wherein the conductive etch stop layer comprises ruthenium.
10 . The method of claim 9 , wherein the depositing the conductive hard mask layer comprises depositing tungsten.
11 . A method comprising:
forming a metallic etch stop layer;
forming metallic hard masks over the metallic etch stop layer;
etching the metallic etch stop layer using the metallic hard masks as an etching mask;
etching a plurality of layers underlying the metallic etch stop layer, wherein the metallic hard masks are further used as the etching mask in the etching the plurality of layers, and wherein remaining portions of the plurality of layers form parts of Magnetic Tunnel Junction (MTJ) stacks; and
forming a dielectric capping layer comprising:
sidewall portions on sidewalls of the MTJ stack; and
top portions overlapping the metallic hard masks.
12 . The method of claim 11 , wherein the forming the metallic hard masks comprises:
depositing a metallic hard mask layer; and
patterning the metallic hard mask layer through etching to form the metallic hard masks, wherein the etching is stopped on the metallic etch stop layer.
13 . The method of claim 12 , wherein the patterning the metallic hard mask layer is performed using an etching gas, and wherein when the plurality of layers are etched, top surfaces of the metallic hard masks are exposed to the etching gas.
14 . The method of claim 11 , wherein the metallic etch stop layer is formed of a material selected from the group consisting of tungsten and ruthenium.
15 . The method of claim 11 , wherein the forming the metallic etch stop layer comprises depositing a tungsten layer or a tungsten carbide layer.
16 . The method of claim 11 further comprising forming conductive features over and connecting to the metallic hard masks, wherein the metallic hard masks and remaining parts of the metallic etch stop layer act as top electrodes of a plurality of memory cells.
17 . A method comprising:
depositing a first metal layer;
depositing a second metal layer over the first metal layer, wherein the second metal layer comprises:
a first metal-containing layer comprising a first metal-containing material; and
a second metal-containing layer comprising a second metal-containing material different from the first metal-containing material;
patterning the second metal layer to form etching masks, wherein the patterning the second metal layer is performed using the first metal layer as an etch stop layer, and the patterning is stopped on a top surface of the first metal layer; and
etching a plurality of layers to form magnetic tunnel junction memory cells, wherein the etching masks formed from the second metal layer are used to define patterns for the plurality of layers.
18 . The method of claim 17 , wherein the forming the first metal layer comprises depositing a first tungsten layer and a ruthenium layer over the first tungsten layer.
19 . The method of claim 18 , wherein the forming the second metal layer comprises depositing a second tungsten layer over the ruthenium layer.
20 . The method of claim 17 , wherein the second metal layer comprises tungsten carbide.