Modeling and Experimental Validation of the Intrinsic SNR in Spin Qubit Gate-Based Readout and Its Impacts on Readout Electronics

Bagas Prabowo;Jurgen Dijkema;Xiao Xue;Fabio Sebastiano;Lieven M. K. Vandersypen;Masoud Babaie
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引用次数: 0

Abstract

In semiconductor spin quantum bits (qubits), the radio-frequency (RF) gate-based readout is a promising solution for future large-scale integration, as it allows for a fast, frequency-multiplexed readout architecture, enabling multiple qubits to be read out simultaneously. This article introduces a theoretical framework to evaluate the effect of various parameters, such as the readout probe power, readout chain's noise performance, and integration time on the intrinsic readout signal-to-noise ratio, and thus readout fidelity of RF gate-based readout systems. By analyzing the underlying physics of spin qubits during readout, this work proposes a qubit readout model that takes into account the qubit's quantum mechanical properties, providing a way to evaluate the tradeoffs among the aforementioned parameters. The validity of the proposed model is evaluated by comparing the simulation and experimental results. The proposed analytical approach, the developed model, and the experimental results enable designers to optimize the entire readout chain effectively, thus leading to a faster, lower power readout system with integrated cryogenic electronics.
基于自旋质子栅极读出的固有信噪比的建模和实验验证及其对读出电子器件的影响
在半导体自旋量子比特(量子比特)中,基于射频(RF)栅极的读出是未来大规模集成的一种有前途的解决方案,因为它可以实现快速、频率多路复用的读出架构,从而能够同时读出多个量子比特。本文介绍了一个理论框架,用于评估各种参数(如读出探针功率、读出链的噪声性能和积分时间)对读出信噪比的影响,从而评估基于射频门的读出系统的读出保真度。通过分析自旋量子比特在读出过程中的基本物理特性,这项研究提出了一种考虑到量子比特量子力学特性的量子比特读出模型,为评估上述参数之间的权衡提供了一种方法。通过比较模拟和实验结果,评估了所提模型的有效性。所提出的分析方法、开发的模型和实验结果使设计人员能够有效优化整个读出链,从而实现更快、更低功耗的集成低温电子读出系统。
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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