Formulation of a Mesoscopic Electron Beam Splitter with Application in Semiconductor Based Quantum Computing
A. Shanker, D. Bhowmik, T.K. Bhattacharya

TL;DR
This paper develops an analytical model for a mesoscopic electron beam splitter, inspired by optical beam splitters, to facilitate quantum computing with ballistic electrons in semiconductor devices.
Contribution
It introduces a novel analytical formulation for an electron beam splitter based on wave analogy, aiding quantum device design.
Findings
Derived a wave-based model for electron beam splitting.
Proposed a design for a 50-50 electron beam splitter.
Established a theoretical foundation for semiconductor quantum computing components.
Abstract
We aim to analytically arrive at a beam splitter formulation for electron waves. The electron beam splitter is an essential component of quantum logical devices. To arrive at the beam splitter structure, the electrons are treated as waves, i.e. we assume the transport to be ballistic. Ballistic electrons are electrons that travel over such short distances that their phase coherence is maintained. For mesoscopic devices with size smaller than the mean free path, the phase relaxation length and the Fermi wavelength of electrons in the medium, the transport can be considered to be coherent and hence ballistic. In such a case the electron motion can be completely described by the Schrodinger's wave equation with an effective mass assigned to the electron. To design a beam splitter, we draw inspiration from an electromagnetic beam splitter, where the Maxwell's equations (and subsequently the…
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Taxonomy
TopicsQuantum and electron transport phenomena · Semiconductor Quantum Structures and Devices · Quantum Information and Cryptography
