SPINE(旋转模拟器)-一个量子电子界面模拟器

Jeroen P. G. van Dijk, A. Vladimirescu, M. Babaie, E. Charbon, F. Sebastiano
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引用次数: 4

摘要

量子计算机包括一个量子处理器和相关的控制电子设备,用于操纵量子处理器核心的量子位。CMOS电路放置在量子比特附近,并在低温下工作,为控制数百万量子比特提供了最佳解决方案。电子器件的性能要求非常严格,其设计需要同时优化电路和量子系统。本文介绍了用于电子/量子系统协同设计和协同优化的SPINE (SPIN Emulator)工具集。它包括一个SPICE模拟器,增强了基于哈密顿解算器的Verilog-A模型,模拟了单电子自旋量子比特的量子行为。提出了一种协同设计方法,一方面推导出要应用于量子比特和从量子比特捕获的电信号的规格,另一方面确保电子设备在产生所需信号时的合规性。该方法在考虑控制电路中的实际权衡(如功耗、复杂性和成本)的同时,优化了量子位性能,并通过实际设计示例证明了这一点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
SPINE (SPIN Emulator) - A Quantum-Electronics Interface Simulator
A quantum computer comprises a quantum processor and the associated control electronics used to manipulate the qubits at the core of a quantum processor. CMOS circuits placed close to the quantum bits and operating at cryogenic temperatures offer the best solution for the control of millions of qubits. The performance requirements of the electronics are very stringent and its design requires the simultaneous optimization of both the circuits and the quantum system. This paper presents the SPINE (SPIN Emulator) toolset for the co-design and co-optimization of electronic/quantum systems. It comprises a SPICE simulator enhanced with a Verilog-A model based on a Hamiltonian solver emulating the quantum behavior of single-electron spin qubits. A co-design methodology is proposed to derive on the one hand the specifications of the electrical signals to be applied to and captured from the qubits, and to ensure on the other hand, the compliance of the electronics in generating the required signals. This methodology results in an optimized qubit performance while considering practical trade-offs in the control circuits, such as power consumption, complexity and cost as proven by a practical design example.
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