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Industrially fabricated single-electron quantum dots in Si/Si-Ge heterostructures

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arxiv 2410.16913 v3 pith:75EBHQMN submitted 2024-10-22 cond-mat.mes-hall quant-ph

classification cond-mat.mes-hallquant-ph
keywords quantumdevicesfabricationindustrialqubitsi-gearchitecturesbudget
verification ladder T0 review T1 audit T2 compute T3 formal
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This paper reports the compatibility of heterostructure-based spin qubit devices with industrial CMOS technology. It features Si/Si-Ge quantum dot devices fabricated using Infineon's 200 mm production line within a restricted thermal budget. The devices exhibit state-of-the-art charge sensing, charge noise and valley splitting characteristics, showing that industrial fabrication is not harming the heterostructure quality. These measured parameters are all correlated to spin qubit coherence and qubit gate fidelity. We describe the single electron device layout, design and its fabrication process using electron beam lithography. The incorporated standard 90 nm back-end of line flow for gate-layer independent contacting and wiring can be scaled up to multiple wiring layers for scalable quantum computing architectures. In addition, we present millikelvin characterization results. Our work exemplifies the potential of industrial fabrication methods to harness the inherent CMOS-compatibility of the Si/Si-Ge material system, despite being restricted to a reduced thermal budget. It paves the way for advanced quantum processor architectures with high yield and device quality.

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  1. Baseband control of single-electron silicon spin qubits in two dimensions

    cond-mat.mes-hall 2024-12 conditional novelty 7.0 of 10

    Spin hopping between dots with differently tilted quantization axes performs high-fidelity microwave-free single-qubit control in a silicon 2x2 array.

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