Semiconductor wafer having trenches with varied dimensions for multi-chip modules
A semiconductor wafer includes a first substrate and a first etch stop layer formed on the first substrate. The etch stop layer has an opening. The semiconductor wafer further includes a second substrate and a second etch stop layer formed on the second substrate. The first substrate is bonded on top of the second substrate such that the first etch stop layer is positioned between the first substrate and the second substrate. A trench is formed in the opening.
1. A method of fabricating a semiconductor wafer, the method comprising:
providing a first substrate;
forming a first etch stop layer on a top surface of the first substrate;
bonding a second substrate directly to a top surface of the first etch stop layer; forming a second etch stop layer on a top surface of the second substrate, wherein a first opening is patterned in the second etch stop layer, the first opening exposing a portion of the second substrate;
forming a third substrate directly on a top surface of the second etch stop layer;
forming a third etch stop layer on a top surface of the third substrate, wherein a second opening and a third opening are patterned in the third etch stop layer, the second opening exposing a first portion of the third substrate and the third opening exposing a second portion of the third substrate, wherein the third opening is vertically aligned over the first opening;
forming a first trench by removing the exposed first portion of the third substrate in the second opening, wherein the first trench terminates at the second etch stop layer; and
forming a second trench by removing the exposed second portion of the third substrate in the third opening and the exposed portion of the second substrate in the first opening, wherein the second trench terminates at the first etch stop layer.
2. The method according to claim 1 , wherein the first substrate comprises silicone.
3. The method according to claim 1 further comprising forming a micro-cooler structure embedded between the third etch stop layer and the second etch stop layer.
4. The method according to claim 1 , further comprising forming a micro-cooler structure embedded between the first etch stop layer and the second etch stop layer.