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@INPROCEEDINGS{Schreckenberg:1021432,
author = {Schreckenberg, Lea and Otten, Rene and Vliex, Patrick and
Xue, Ran and Tu, Jhih-Sian and Seidler, Inga and
Trellenkamp, Stefan and Schreiber, Lars and Bluhm, Hendrik
and van Waasen, Stefan},
title = {{S}i{G}e {Q}ubit {B}iasing with a {C}ryogenic {CMOS} {DAC}
at m{K} {T}emperature},
reportid = {FZJ-2024-00729},
year = {2023},
note = {Corresponding Journal Paper:
https://juser.fz-juelich.de/record/1018304},
abstract = {For running advanced algorithms on a universal quantum
computer, millions of qubits are required. To make use of
quantum effects, state-of-the-art solid-state qubit devices
have to be cooled to mK temperatures, which limits the
systems’ scalability with room temperature (RT)
electronics. We present the direct co-integration of a
scalable, fully integrated, eight channel Bias-DAC designed
in a 65-nm bulk CMOS technology and a Si/SiGe spin qubit
device at the mixing chamber (MC) of a dilution refrigerator
operating below 45 mK MC temperature. As a full proof of
principle, the bias of a single electron transistor used as
a sensing dot, as well as a single and double quantum dot
bias of the qubit device is reported. The slow drift of the
DAC $S\&H$ output circuit of 0.96 μV/s leads to a
calculated prospective power consumption of 64.5 pW/ch for
DC qubit bias voltages generated at low temperature},
month = {Sep},
date = {2023-09-11},
organization = {ESSCIRC 2023- IEEE 49th European Solid
State Circuits Conference (ESSCIRC),
Lisbon (Portugal), 11 Sep 2023 - 14 Sep
2023},
subtyp = {After Call},
cin = {ZEA-2 / PGI-11 / HNF},
cid = {I:(DE-Juel1)ZEA-2-20090406 / I:(DE-Juel1)PGI-11-20170113 /
I:(DE-Juel1)HNF-20170116},
pnm = {5223 - Quantum-Computer Control Systems and Cryoelectronics
(POF4-522) / 5221 - Advanced Solid-State Qubits and Qubit
Systems (POF4-522)},
pid = {G:(DE-HGF)POF4-5223 / G:(DE-HGF)POF4-5221},
typ = {PUB:(DE-HGF)6},
url = {https://juser.fz-juelich.de/record/1021432},
}