Semicondctor device package thermal conduit
A packaged electronic device includes an integrated circuit and an electrically non-conductive encapsulation material in contact with the integrated circuit. A thermal conduit extends from an exterior of the package, through the encapsulation material, to the integrated circuit. The thermal conduit has a thermal conductivity higher than the encapsulation material contacting the thermal conduit. The thermal conduit includes a cohered nanoparticle film. The cohered nanoparticle film is formed by a method which includes an additive process.
1 . A device comprising:
an integrated circuit;
a material covering at least part of the integrated circuit, the material including an opening that penetrates through the material; and
a layer of nanoparticles on at least part of an internal wall of the opening and over at least part of the integrated circuit.
2 . The device of claim 1 , wherein the material includes opposite surfaces, and the layer of nanoparticles reaches the opposite surfaces of the material.
3 . The device of claim 2 , wherein the layer of nanoparticles is on one of the opposite surfaces of the material and extends into the opening.
4 . The device of claim 1 , further comprising a temperature measurement structure coupled to the layer of nanoparticles.
5 . The device of claim 1 , further comprising a heat sink coupled to the layer of nanoparticles.
6 . The device of claim 1 , wherein the layer of nanoparticles includes at least one of: aluminum oxide, diamond, hexagonal boron nitride, cubic boron nitride, or aluminum nitride.
7 . The device of claim 1 , wherein the layer of nanoparticles includes at least one of: metal, graphene, graphene embedded in metal, graphite, graphitic carbon, or carbon nanotubes.
8 . The device of claim 1 , wherein the layer of nanoparticles includes at least one of: copper, nickel, palladium, platinum, iridium, rhodium, cerium, osmium, molybdenum, or gold.
9 . The device of claim 1 , further comprising graphite on the layer of nanoparticles and in the opening.
10 . The device of claim 1 , wherein the layer of nanoparticles is substantially free of any organic binder material.
11 . The device of claim 1 , wherein the layer of nanoparticles includes primarily nanoparticles.
12 . The device of claim 11 , wherein the layer of nanoparticles is a first layer of nanoparticles, and the device further comprises a second layer of nanoparticles on the first layer of nanoparticles.
13 . The device of claim 1 , wherein the layer of nanoparticles is configurable to be a thermal conduit.
14 . The device of claim 1 , wherein the integrated circuit includes a layer of interconnects on a substrate, and the layer of nanoparticles is on the layer of interconnects.
15 . The device of claim 14 , further comprising a metal pad coupled between the layer of nanoparticles and the layer of interconnects.
16 . The device of claim 14 , wherein a side of the integrated circuit is a side of the substrate opposite from the interconnects.
17 . The device of claim 1 , further comprising a chip carrier on which the integrated circuit is mounted, and the side faces away from the chip carrier.
18 . The device of claim 1 , wherein the material is an encapsulation material.
19 . A device comprising:
an integrated circuit including:
a substrate that includes a first surface and a second surface opposite the first surface; and
an interconnect structure on the first surface of the substrate;
a layer of nanoparticles on the integrated circuit, the layer of nanoparticles including a bottom portion and two protruding top portions on two sides of the bottom portion, in which the bottom portion is conformal to and in direct contact with the interconnect structure or the second surface and is between the integrated circuit and the two protruding top portions.
20 . The device of claim 19 , further comprising a material covering at least part of the integrated circuit, wherein the material includes an opening that penetrates through the material, and the bottom portion and the two protruding portions are in the opening.
21 . The device of claim 20 , wherein the layer of nanoparticles extends from inside the opening and above the material.
22 . The device of claim 19 , wherein the layer is a first layer, and the device further comprises a second layer of material on the first layer of nanoparticles, and wherein the second layer of material includes nanoparticles of a second material, the second material including at least one of: aluminum oxide, diamond, hexagonal boron nitride, cubic boron nitride, or aluminum nitride.
23 . The device of claim 19 , wherein the layer is a first layer, and the device further comprises a second layer of material on the first layer of nanoparticles, and wherein the second layer of material includes nanoparticles of a second material, the second material including at least one of: metal, graphene, graphene embedded in metal, graphite, graphitic carbon, or carbon nanotubes.
24 . The device of claim 19 , wherein the layer is a first layer, and the device further comprises a second layer of material on the first layer of nanoparticles, and wherein the second layer of material includes nanoparticles of a second material, the second material including at least one of: copper, nickel, palladium, platinum, iridium, rhodium, cerium, osmium, molybdenum, or gold.
25 . The device of claim 19 , wherein the layer of nanoparticles includes graphite.