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Fundamental limits for near-junction conduction cooling of high power GaN-on-diamond devices
- Song, C.;
- Kim, J.;
- Lee, H.;
- Cho, J.
WEB OF SCIENCE
18SCOPUS
20초록
The integration of differing materials can enable breakthrough performance for semiconductor devices. One example is the integration of gallium nitride (GaN) and diamond to form GaN-on-diamond, which enables high-power GaN devices to achieve extreme power densities and, arguably, approaches fundamental limits for conduction cooling. Here, we examine the fundamental limits for near-junction phonon conduction cooling of GaN-on-diamond devices via finite element calculations of their lowest possible thermal resistance. A semi-classical transport theory for phonons interacting with interfaces and defects is used to calculate the in-plane thermal conductivity of a GaN epilayer and thereby accurately account for the thermal spreading resistance of the GaN layer. The device thermal resistance of a state-of-the-art GaN-on-diamond structure is predicted to be ∼13.0 K mm W −1 for a 12 finger device with 30 μm gate-to-gate spacing and a power dissipation of 5 W mm −1 . For the same multifinger cell geometry and dissipated power, device thermal resistances as low as ∼10.0 K mm W −1 may be possible with assuming anisotropic but homogeneous diamond, as well as the absence of phonon scattering by external defects in the GaN layer and interface. © 2019 Elsevier Ltd
키워드
- 제목
- Fundamental limits for near-junction conduction cooling of high power GaN-on-diamond devices
- 저자
- Song, C.; Kim, J.; Lee, H.; Cho, J.
- 발행일
- 2019-06
- 유형
- Article
- 권
- 295
- 페이지
- 12 ~ 15
- 언어
- ENG
- 출판사
- Elsevier Ltd
- 발행국가
- 영국
- 분량
- 4 페이지
- ISSN
- E 1879-2766
P 0038-1098