Through silicon vias and methods of fabricating thereof
Methods and devices of having an enclosure structure formed in a multi-layer interconnect and a through-silicon-via (TSV) extending through the enclosure structure. In some implementations, a protection layer is formed between the enclosure structure and the TSV.
1. A method comprising:
providing a semiconductor substrate having a semiconductor device disposed over the semiconductor substrate;
depositing a first dielectric layer over the semiconductor device;
forming, within the first dielectric layer, a first via, a first metal line over the first via, a first metal ring coplanar with the first via, and a second metal ring coplanar with the first metal line and on the first metal ring;
depositing a second dielectric layer over the first metal line;
forming, within the second dielectric layer, a second via, a second metal line over the second via, a third metal ring coplanar with the second via and on the second metal ring, and a fourth metal ring coplanar with the second metal line and on the third metal ring; and
forming another via through a portion of the semiconductor substrate, wherein the forming the another via includes etching the first dielectric layer and the second dielectric layer to form an opening extending through a center region of each of the first metal ring, the second metal ring, the third metal ring, and the fourth metal ring, wherein at least one of the first metal ring, the second metal ring, the third metal ring, and the fourth metal ring are laterally etched during the etching to form the opening.
2. The method of claim 1 , wherein: the first via, the first metal line, the second via, and the second metal line are electrically coupled to a source/drain region of the semiconductor device.
3. The method of claim 1 , wherein the first dielectric layer and the second dielectric layer are low-k dielectric materials.
4. The method of claim 1 , wherein the forming the another via includes:
depositing a protection layer between the first metal ring and the another via.
5. The method of claim 1 , wherein the forming the first metal ring includes depositing a conductive material having curvilinear edges.
6. The method of claim 1 , wherein the forming the first metal ring and the second metal ring is performed using a dual damascene process.
7. The method of claim 1 , further comprising: thinning the semiconductor substrate after forming the another via.
8. A method comprising:
depositing a first low-k dielectric layer over a semiconductor substrate;
forming, within the first low-k dielectric layer, a first via, a first metal line over the first via, a first metal ring coplanar with the first via, and a second metal ring coplanar with the first metal line and on the first metal ring;
depositing a second low-k dielectric layer over the first metal line;
forming, within the second low-k dielectric layer, a second via, a second metal line over the second via, a third metal ring coplanar with the second via and on the second metal ring, and a fourth metal ring coplanar with the second metal line and on the third metal ring; and
forming an opening, wherein the forming the opening includes etching the first low-k dielectric layer and the second low-k dielectric layer to form an opening extending through a center region of each of the first metal ring, the second metal ring, the third metal ring, and the fourth metal ring; and
filling the opening with conductive material.
9. The method of claim 8 , further comprising:
depositing a protection layer on sidewalls of the opening prior to filling the opening.
10. The method of claim 9 , further comprising:
forming a barrier layer in the opening prior to filling the opening with conductive material, wherein the barrier layer physically interfaces the protection layer.
11. The method of claim 8 , wherein the first, second and third metal ring are in a ring shape from a top view.