A Computational Analysis on 5-Qubit Quantum Circuits Designed With Electron Spins in Silicon

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초록

We computationally investigate the programmability of quantum circuits that are manipulated with electron spins in semiconductor devices based on the silicon/silicon-germanium heterostructure. Using our multi-scale modeling approach whose workloads are fairly accelerated with a parallel computing, we design an electrically defined quantum dot structure that confines up to 5 electron spins with bias controls, and calculate the sets of electrical biases that serve as the standard operation modes that can initialize the system with weakly or strongly correlated spins. With the secured operation modes, we discuss how essential universal gates can be implemented, and demonstrate end-to-end operations of two different 5-qubit algorithm circuits. This work not only reveals the fundamental guidelines for designs of silicon quantum processors that may not be easy to be procured directly from existing commercial softwares or experiments, but presents the details of a practical method for a computational analysis of quantum information processing in silicon devices that would be hard to be conducted with ab-initio simulations.

제목
A Computational Analysis on 5-Qubit Quantum Circuits Designed With Electron Spins in Silicon
저자
Ryu, Junghee; Ryu, Hoon
DOI
10.1109/MNANO.2024.3475889
발행일
2024-12
유형
Article
저널명
IEEE Nanotechnology Magazine
권
18
호
6
페이지
11 ~ 20