计算Transmon量子比特自发发射率的全波方法

IF 1.8 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Journal on Multiscale and Multiphysics Computational Techniques Pub Date : 2022-04-26 DOI:10.1109/JMMCT.2022.3169460
Thomas E. Roth;Weng C. Chew
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引用次数: 4

摘要

自发发射率(SER)是任何量子比特(量子位)的重要品质因数,因为它可以在量子位的控制和退相干中发挥重要作用。因此,准确表征实际器件的SER是量子信息处理器件设计中的重要一步。在这里,我们特别关注实验上流行的transmon量子位平台,这是一种超导电路量子位。尽管了解这些量子位的SER很重要,但它通常是使用近似电路模型来确定的,或者是从制造的器件上的测量推断出来的。为了提高设计过程中预测的准确性,最好使用全波数值方法,该方法可以在描述实际系统时进行最小数量的近似。在这项工作中,我们展示了如何通过最近开发的对耦合到电磁环境的传输量子比特的基于场的描述来实现这一点。我们通过计算与文献中发现的设备相似的SER来验证我们的模型,这些设备已经通过实验得到了很好的表征。我们通过将我们的结果与简化的集总元件电路和传输线模型进行比较来进一步交叉验证我们的结果。
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Full-Wave Methodology to Compute the Spontaneous Emission Rate of a Transmon Qubit
The spontaneous emission rate (SER) is an important figure of merit for any quantum bit (qubit), as it can play a significant role in the control and decoherence of the qubit. As a result, accurately characterizing the SER for practical devices is an important step in the design of quantum information processing devices. Here, we specifically focus on the experimentally popular platform of a transmon qubit, which is a kind of superconducting circuit qubit. Despite the importance of understanding the SER of these qubits, it is often determined using approximate circuit models or is inferred from measurements on a fabricated device. To improve the accuracy of predictions in the design process, it is better to use full-wave numerical methods that can make a minimal number of approximations in the description of practical systems. In this work, we show how this can be done with a recently developed field-based description of transmon qubits coupled to an electromagnetic environment. We validate our model by computing the SER for devices similar to those found in the literature that have been well-characterized experimentally. We further cross-validate our results by comparing them to simplified lumped element circuit and transmission line models as appropriate.
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来源期刊
CiteScore
4.30
自引率
0.00%
发文量
27
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