Direct hybrid bond pad having tapered sidewall
An element, a bonded structure that includes the element, and methods of forming the same are disclosed. The element can include a nonconductive field region having a surface defining at least a portion of a bonding surface of the element. The surface of the nonconductive field region is prepared for direct bonding. The element can also include a conductive feature having an upper surface that defines at least a portion of the bonding surface of the element, a lower surface opposite the upper surface, and a sidewall that extends between the upper surface and the lower surface. An angle between the upper surface and the sidewall is about 75° or less. The bonded structure includes the element and a second element directly bonded to one another without an intervening adhesive.
1 . A first element configured to directly bond to a second element, the first element comprising:
a nonconductive field region having a surface defining at least a portion of a bonding surface of the first element, the surface of the nonconductive field region being prepared for direct bonding to the second element; and
a conductive feature having an upper surface defining at least a portion of the bonding surface of the first element, a lower surface opposite the upper surface, and a sidewall connecting and extending between the upper surface and the lower surface, wherein an angle between the upper surface and the sidewall is in a range of 30° to 70° such that the upper surface is wider than the lower surface.
2 . The first element of claim 1 , wherein the angle between the upper surface and the sidewall is in a range of 30° to 60°.
3 . The first element of claim 1 , wherein the angle between the upper surface and the sidewall is in a range of 35° to 50°.
4 . The first element of claim 1 , wherein the conductive feature is a contact pad and a thickness of the contact pad is in a range of 1 μm to 2 μm.
5 . The first element of claim 4 , wherein a width of the contact pad is in a range of 0.5 μm to 20 μm.
6 . The first element of claim 5 , further comprising a back-end-of-line structure below the nonconductive field region, the back-end-of-line structure having a via electrically connected to the contact pad.
7 . The first element of claim 1 , wherein the upper surface of the conductive feature is recessed relative to the surface of the nonconductive field region by 2 nm to 20 nm.
8 . A bonded structure comprising:
a first element including a first nonconductive field region having a first surface defining at least a portion of a bonding surface of the first element, and a first conductive feature having a first upper surface defining at least a portion of the bonding surface of the first element, a first lower surface opposite the first upper surface, and a first sidewall connecting and extending between the first upper surface and the first lower surface, wherein an angle between the first upper surface and the first sidewall is in a range of 30° to 70° such that the first upper surface is wider than the first lower surface; and
a second element including a second nonconductive field region having a second surface directly bonded to the first surface of the first nonconductive field region, and a second conductive feature directly bonded to the first conductive feature.
9 . The bonded structure of claim 8 , wherein the angle between the first upper surface and the first sidewall is in a range of 30° to 60°.
10 . The bonded structure of claim 8 , wherein the angle between the first upper surface and the first sidewall is in a range of 35° to 50°.
11 . The bonded structure of claim 8 , wherein the first conductive feature is a contact pad and a thickness of the contact pad is in a range of 1 μm to 2 μm, and a width of the contact pad is in a range of 0.5 μm to 20 μm.
12 . The bonded structure of claim 8 , wherein the first upper surface of the first conductive feature is recessed relative to the first surface of the first nonconductive field region by 2 nm to 20 nm.
13 . The bonded structure of claim 8 , wherein the second conductive feature has a second upper surface directly bonded to the first conductive feature, a second lower surface opposite the second upper surface of the second conductive feature, and a second sidewall extending between the second upper surface and the second lower surface of the second conductive feature, wherein an angle between the second upper surface and the second sidewall of the second conductive feature is 75° or less.
14 . A method of forming a conductive pad of an element, the method comprising:
forming a patterned resist layer over at least a portion of a surface of a dielectric layer;
removing portions of the dielectric layer by etching to form a cavity having an angle between a sidewall of the cavity and the surface of the dielectric layer, the angle being in a range of 110° to 150° such that an opening of the cavity is wider than a floor of the cavity;
providing a conductive material to at least partially fill the cavity with the conductive material; and
polishing at least the surface of the dielectric layer to prepare at least a portion of a bonding surface of the element for direct bonding to a second element, and to leave the conductive material in the form of a conductive feature having an upper surface defining at least a portion of the bonding surface of the element, a lower surface opposite the upper surface, and a sidewall connecting and extending between the upper surface and the lower surface, wherein an angle between the upper surface and the sidewall is in a range of 30° to 70° such that the upper surface is wider than the lower surface.
15 . The method of claim 14 , wherein the patterned resist layer has a shape that conforms to a shape of the cavity, and the etching comprises dry etching.
16 . The method of claim 14 , wherein the etching comprises isotropic etching.
17 . The method of claim 14 , wherein the sidewall of the cavity has a curvature.