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Cryogenic III-V and Nb electronics integrated on silicon for large-scale quantum computing platforms

Author(s)
Jeong, JaeyongKim, Seong KwangSuh, Yoon-JeLee, JisungChoi, JoonyoungKim, Joon PyoKim, Bong HoPark, JuhyukShim, JoonsupRheem, NahyunLee, Chan JikJo, YounjungGeum, Dae-MyeongPark, Seung-YoungKim, JongminKim, Sanghyeon
Issued Date
2024-12
DOI
10.1038/s41467-024-55077-1
URI
https://scholarworks.unist.ac.kr/handle/201301/90857
Fulltext
https://www.nature.com/articles/s41467-024-55077-1
Citation
NATURE COMMUNICATIONS, v.15, no.1, pp.10809
Abstract
Quantum computers now encounter the significant challenge of scalability, similar to the issue that classical computing faced previously. Recent results in high-fidelity spin qubits manufactured with a Si CMOS technology, along with demonstrations that cryogenic CMOS-based control/readout electronics can be integrated into the same chip or die, opens up an opportunity to break out the challenges of qubit size, I/O, and integrability. However, the power consumption of cryogenic CMOS-based control/readout electronics cannot support thousands or millions of qubits. Here, we show that III-V two-dimensional electron gas and Nb superconductor-based cryogenic electronics can be integrated with Si and operate at extremely low power levels, enabling the control and readout for millions of qubits. Our devices offer a unity gain cutoff frequency of 601 GHz, a unity power gain cutoff frequency of 593 GHz, and a low noise indication factor (√(ID · gm−1)) of 0.21 √Vmm · √S−1 at 4 K using more than 10 times less power consumption than CMOS.
Publisher
NATURE PORTFOLIO
ISSN
2041-1723
Keyword
DESIGNMWOHMIC CONTACTSHEMTSTEMPERATURETECHNOLOGYADVANTAGE

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