Designing High-Fidelity Zeno Gates for Dissipative Cat Qubits

IF 9.3 Q1 PHYSICS, APPLIED
Gautier, Ronan, Mirrahimi, Mazyar, Sarlette, Alain
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引用次数: 2

Abstract

Bosonic cat qubits stabilized with a driven two-photon dissipation are systems with exponentially biased noise, opening the door to low-overhead, fault-tolerant and universal quantum computing. However, current gate proposals for such qubits induce substantial noise of the unprotected type, whose poor scaling with the relevant experimental parameters limits their practical use. In this work, we provide a new perspective on dissipative cat qubits by reconsidering the reservoir mode used to engineer the tailored two-photon dissipation, and show how it can be leveraged to mitigate gate-induced errors. Doing so, we introduce four new designs of high-fidelity and bias-preserving cat qubit gates, and compare them to the prevalent gate methods. These four designs should give a broad overview of gate engineering for dissipative systems with different and complementary ideas. In particular, we propose both already achievable low-error gate designs and longer-term implementations.

Abstract Image

耗散量子比特的高保真芝诺门设计
用驱动双光子耗散稳定的玻色子量子比特是具有指数偏置噪声的系统,为低开销、容错和通用量子计算打开了大门。然而,目前针对此类量子比特的栅极方案会产生大量无保护类型的噪声,其与相关实验参数的差标度限制了其实际应用。在这项工作中,我们通过重新考虑用于设计定制双光子耗散的储层模式,提供了耗散猫量子比特的新视角,并展示了如何利用它来减轻门诱导误差。为此,我们介绍了四种新的高保真和偏置猫量子比特门设计,并将它们与流行的门方法进行了比较。这四种设计应该对具有不同和互补思想的耗散系统的栅极工程有一个广泛的概述。特别是,我们提出了已经实现的低误差门设计和长期实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
14.60
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0.00%
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