Towards Quantum Computing with Molecular Electronics
arXiv:2202.03284 · doi:10.1021/acs.jctc.2c00162
Abstract
In this study, we explore the use of molecules and molecular electronics for quantum computing. We construct one-qubit gates using one-electron scattering in molecules, and two-qubit controlled-phase gates using electron-electron scattering along metallic leads. Furthermore, we propose a class of circuit implementations, and show initial applications of the framework by illustrating one-qubit gates using the molecular electronic structure of molecular hydrogen as a baseline model.
18+40 pages, 7 figures, 1 table; comments welcome
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