Millikelvin digital-to-analog converter for superconducting quantum processors

Fuente: arXiv
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Dettagli Bibliografici
Autori principali: Hu, Ruizi, Li, Zongyuan, Yao, Zhancheng, Wu, Yufei, Zhang, Qiang, Jiao, Yining, Guan, Quan, Jin, Lijing, Lan, Wangwei, Li, Chengyao, Ma, Lu, Mao, Liyong, Zhan, Huijuan, Zhan, Ze, Gao, Ran, Hu, Lijuan, Lu, Kannan, Ma, Xizheng, Wang, Tenghui, Xiang, Peng, Deng, Chunqing, Zhu, Shasha
Natura: Preprint
Pubblicazione: 2026
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author Hu, Ruizi
Li, Zongyuan
Yao, Zhancheng
Wu, Yufei
Zhang, Qiang
Jiao, Yining
Guan, Quan
Jin, Lijing
Lan, Wangwei
Li, Chengyao
Ma, Lu
Mao, Liyong
Zhan, Huijuan
Zhan, Ze
Gao, Ran
Hu, Lijuan
Lu, Kannan
Ma, Xizheng
Wang, Tenghui
Xiang, Peng
Deng, Chunqing
Zhu, Shasha
author_facet Hu, Ruizi
Li, Zongyuan
Yao, Zhancheng
Wu, Yufei
Zhang, Qiang
Jiao, Yining
Guan, Quan
Jin, Lijing
Lan, Wangwei
Li, Chengyao
Ma, Lu
Mao, Liyong
Zhan, Huijuan
Zhan, Ze
Gao, Ran
Hu, Lijuan
Lu, Kannan
Ma, Xizheng
Wang, Tenghui
Xiang, Peng
Deng, Chunqing
Zhu, Shasha
contents Scaling superconducting quantum processors is increasingly constrained by the wiring, heat load, and calibration overhead associated with delivering high-resolution analog signals from room temperature to qubits at millikelvin temperature. Here we demonstrate a superconducting digital-to-analog converter (DAC) integrated with high-coherence fluxonium qubits in a multi-chip module architecture. The DACs generate persistent analog flux signals for tuning qubit parameters and are programmed deterministically using single-flux-quantum (SFQ) pulses, providing a digital interface compatible with established SFQ routing and demultiplexing technologies. Operating at millikelvin temperature, the DACs enable in-situ tuning of fluxonium qubits without measurable degradation of qubit coherence. The presented device provides a static control primitive for flux-tunable qubits, enabling parameter homogenization and eliminating the need for individual room-temperature DC bias lines. These results establish SFQ-programmable millikelvin DACs as a building block for digitally controlled superconducting quantum processors.
format Preprint
id arxiv_https___arxiv_org_abs_2604_25303
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Millikelvin digital-to-analog converter for superconducting quantum processors
Hu, Ruizi
Li, Zongyuan
Yao, Zhancheng
Wu, Yufei
Zhang, Qiang
Jiao, Yining
Guan, Quan
Jin, Lijing
Lan, Wangwei
Li, Chengyao
Ma, Lu
Mao, Liyong
Zhan, Huijuan
Zhan, Ze
Gao, Ran
Hu, Lijuan
Lu, Kannan
Ma, Xizheng
Wang, Tenghui
Xiang, Peng
Deng, Chunqing
Zhu, Shasha
Quantum Physics
Scaling superconducting quantum processors is increasingly constrained by the wiring, heat load, and calibration overhead associated with delivering high-resolution analog signals from room temperature to qubits at millikelvin temperature. Here we demonstrate a superconducting digital-to-analog converter (DAC) integrated with high-coherence fluxonium qubits in a multi-chip module architecture. The DACs generate persistent analog flux signals for tuning qubit parameters and are programmed deterministically using single-flux-quantum (SFQ) pulses, providing a digital interface compatible with established SFQ routing and demultiplexing technologies. Operating at millikelvin temperature, the DACs enable in-situ tuning of fluxonium qubits without measurable degradation of qubit coherence. The presented device provides a static control primitive for flux-tunable qubits, enabling parameter homogenization and eliminating the need for individual room-temperature DC bias lines. These results establish SFQ-programmable millikelvin DACs as a building block for digitally controlled superconducting quantum processors.
title Millikelvin digital-to-analog converter for superconducting quantum processors
topic Quantum Physics
url https://arxiv.org/abs/2604.25303