Optimization of Channel Structures in InP HEMT Technology for Cryogenic Low-Noise and Low-Power Operation

  • Cha, Eunjung; 
  • Wadefalk, Niklas; 
  • Moschetti, Giuseppe; 
  • Pourkabirian, Arsalan; 
  • Stenarson, Jorgen; 
  • ... Kim, Dae-Hyun; 
  • 외 2명
Citations

WEB OF SCIENCE

25
Citations

SCOPUS

27

초록

We report the impact from channel composition on the cryogenic low-noise performance at low dc power for a 100-nm gate-length InGaAs-InAlAs-InP high-electron mobility transistor (HEMT). Two indium (In) channel compositions, 65% and 80%, were studied by dc and RF characterization at 300 and 5 K. For the cryogenic low-noise optimization, it was important to increase the transconductance to gate-source capacitance ratio in the weak inversion region implying that a higher maximum cut-off frequency in the HEMT does not guarantee lower noise. The HEMT noise performance was obtained from noise measurements in a hybrid three-stage 4-8-GHz (C-band) low-noise amplifier (LNA) down to 300-mu W dc power dissipation. While the HEMT LNA noise performance for both the channel compositions at 300 K was found to be comparable, the HEMT LNA at 5 K with 65% In channel showed a minimum noise temperature of 1.4 K, whereas the noise temperature in the HEMT LNA with 80% In channel HEMTs increased to 2.4 K. The difference in the noise became more pronounced at reduced dc power dissipation. The ultralow dc power of 300 mu W demonstrated for a cryogenic C-band LNA with an average noise temperature of 2.9 K and 24-dB gain is of interest for future qubit read-out electronics at 4 K.

키워드

HEMTs; Logic gates; Indium phosphide; III-V semiconductor materials; Cryogenics; Transconductance; Qubit; Cryogenic; dc power; indium (In) channel content; InP high-electron mobility transistor (HEMT); low-noise amplifier (LNA); noise; quantum computer
제목
Optimization of Channel Structures in InP HEMT Technology for Cryogenic Low-Noise and Low-Power Operation
저자
Cha, Eunjung; Wadefalk, Niklas; Moschetti, Giuseppe; Pourkabirian, Arsalan; Stenarson, Jorgen; Li, Junjie; Kim, Dae-Hyun; Grahn, Jan
DOI
10.1109/TED.2023.3255160
발행일
2023-05
유형
Article
저널명
IEEE Transactions on Electron Devices
권
70
호
5
페이지
2431 ~ 2436