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Multiplexed quantum transport using commercial off-the-shelf CMOS at sub-kelvin temperatures

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arxiv 1907.11816 v1 pith:A2H6AVVT submitted 2019-07-26 cond-mat.mes-hall quant-ph

classification cond-mat.mes-hallquant-ph
keywords quantumcmossub-kelvintemperaturescommercialcryogenicelectronhigh-throughput
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

Continuing advancements in quantum information processing have caused a paradigm shift from research mainly focused on testing the reality of quantum mechanics to engineering qubit devices with numbers required for practical quantum computation. One of the major challenges in scaling toward large-scale solid-state systems is the limited input/output (I/O) connectors present in cryostats operating at sub-kelvin temperatures required to execute quantum logic with high-fidelity. This interconnect bottleneck is equally present in the device fabrication-measurement cycle, which requires high-throughput and cryogenic characterization to develop quantum processors. Here we multiplex quantum transport of two-dimensional electron gases at sub-kelvin temperatures. We use commercial off-the-shelf CMOS multiplexers to achieve an order of magnitude increase in the number of wires. Exploiting this technology we advance 300 mm epitaxial wafers manufactured in an industrial CMOS fab to a record electron mobility of (3.9$\pm$0.6)$\times$10$^5$ cm$^2$\slash Vs and percolation density of (6.9$\pm$0.4)$\times$10$^{10}$ cm$^{-2}$, representing a key step toward large silicon qubit arrays. We envision that the demonstration will inspire the development of cryogenic electronics for quantum information and because of the simplicity of assembly, low-cost, yet versatility, we foresee widespread use of similar cryo-CMOS circuits for high-throughput quantum measurements and control of quantum engineered systems.

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  1. Characterising Quantum Devices at Scale with Custom Cryo-CMOS

    physics.app-ph 2019-08 conditional novelty 6.0 of 10

    A custom cryo-CMOS multiplexer enables parallel, hot-swappable characterization of several quantum devices at milli-Kelvin in a single fridge cool-down, demonstrated with quantum dots and InAs Hall mobility mapping.

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