Metal Source Power Transistor And Method Of Manufacture
A metal source power transistor device and method of manufacture is provided, wherein the metal source power transistor having a source which is comprised of metal and which forms a Schottky barrier with the body region and channel region of the transistor. The metal source power transistor is unconditionally immune from parasitic bipolar action and, therefore, the effects of snap-back and latch-up, without the need for a body contact. The ability to allow the body to float in the metal source power transistor reduces the process complexity and allows for more compact device layout.
1 . A metal source power transistor comprising:
a semiconductor substrate forming a drain layer of a first conductivity type;
a drift layer of a similar first conductivity type arranged on said drain layer;
a body region of a second conductivity type arranged in said drift layer;
a source region arranged in said body region, wherein said source region is formed from a metal and forms a Schottky contact to said body region; and
a gate electrode arranged on said body region and said drift region.
2 . The transistor of claim 1 wherein said drain layer is comprised of N+ silicon, said drift layer is comprised of epitaxially grown N-type silicon, said body region is comprised of P-type silicon, and said source region is formed of rare-earth silicides.
3 . The transistor of claim 1 wherein said drain layer is comprised of P+ silicon, said drift layer is comprised of epitaxially grown P-type silicon, said body region is comprised of N-type silicon, and said source region is formed of any one or combination of Platinum Silicide, Palladium Silicide or Iridium Silicide.
4 . The transistor of claim 1 wherein said metal source power transistor is a planar power MOS transistor.
5 . A metal source power transistor comprising:
a semiconductor substrate forming an emitter layer of a first conductivity type;
a drain layer of a second conductivity type arranged on said emitter layer;
a drift layer of a similar second conductivity type arranged on said drain layer;
a body region of a first conductivity type arranged in said drift layer;
a source region arranged in said body region, wherein said source region is formed from a metal and forms a Schottky contact to said body region; and
a gate electrode arranged on said body region and said drift region.
6 . The transistor of claim 1 wherein said emitter layer is comprised of P+ silicon, said drain layer is comprised of epitaxially grown N+ silicon, said drift layer is comprised of epitaxially grown N-type silicon, said body region is comprised of P-type silicon, and said source region is formed of rare-earth silicides.
7 . The transistor of claim 1 wherein said emitter layer is comprised of N+ silicon, said drain layer is comprised of epitaxially grown P+ silicon, said drift layer is comprised of epitaxially grown P-type silicon, said body region is comprised of N-type silicon, and said source region is formed of any one or combination of Platinum Silicide, Palladium Silicide or Iridium Silicide.
8 . The transistor of claim 1 wherein said metal source power transistor is a planar metal source IGBT.