基于光谱工程的半导体自旋量子比特的轴子信号提取

IF 4.6
Xiangjun Tan;Zhanning Wang
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引用次数: 0

摘要

量子传感和计算技术的最新进展表明,使用各种量子位平台可以提高用于探测宇宙粒子和弱相互作用大质量粒子的测量精度。虽然最近取得了一些进展,但在高保真度提取粒子参数方面,降低环境噪声仍然是一个挑战。应对这些挑战需要在两个层面上作出努力。在器件级,作为探针的量子位及其阵列必须通过优化器件几何结构与电磁噪声隔离。在信号处理层面,有必要开发基于不同量子比特架构的针对特定噪声谱的滤波方法。在这项工作中,我们探索了使用半导体量子点自旋量子比特作为搜索量子色动力学(QCD)轴子和更广泛地说,轴子样粒子的平台的可能性。从推导电子-轴子相互作用的有效哈密顿量开始,我们确定了轴子诱导的有效磁场,并确定了轴子振荡的特征频率。为了抑制器件中的电荷噪声和环境噪声,我们首先分析了电荷噪声谱,然后制定了专用的滤波降噪方案,为探索可行的轴子质量范围铺平了道路。我们的初步研究有望利用量子技术增强对各种轴子信号的筛选。我们期望我们的分析和滤波协议可以帮助推进半导体量子点自旋量子比特阵列在轴子检测中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Toward Axion Signal Extraction in Semiconductor Spin Qubits via Spectral Engineering
Recent advances in quantum sensing and computational technologies indicate the possibility of improving the precision of measurements aimed at detecting cosmological particles and weakly interacting massive particles using various qubit platforms. While recent progress has been made, mitigating environmental noise remains a challenge in extracting particle parameters with high fidelity. Addressing these challenges requires efforts on two levels. At the device level, the qubit and its array acting as a probe must be isolated from electrical and magnetic noise through optimized device geometry. At the signal processing level, it is necessary to develop filtering methods targeting specific noise spectra based on different qubit architectures. In this work, we explore the possibility of using semiconductor quantum dot spin qubits as a platform to search for quantum chromodynamics (QCD) axions and, more broadly, axion-like particles. Starting by deriving an effective Hamiltonian for electron–axion interactions, we identify an axion-induced effective magnetic field and determine the characteristic axion oscillation frequency. To suppress charge noise in the devices and environmental noise, we first analyze the charge noise spectrum and then develop a dedicated filtering and noise-reduction protocol, paving the way for exploring feasible axion mass ranges. Our preliminary study holds promise for enhancing the screening of various axion signals using quantum technologies. We expect that our analysis and filtering protocol can help advance the use of semiconductor quantum dot spin qubit arrays in axion detection.
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CiteScore
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