Dynamics of van der waals charge qubit in 2D bilayers: ab initio quantum transport and qubit measurement

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dc.contributor.author Cao, Jiang
dc.contributor.author Gandus, Guido
dc.contributor.author Agarwal, Tarun
dc.contributor.author Luisier, Mathieu
dc.contributor.author Lee, Youseung
dc.coverage.spatial United States of America
dc.date.accessioned 2022-11-01T08:30:07Z
dc.date.available 2022-11-01T08:30:07Z
dc.date.issued 2022-10
dc.identifier.citation Cao, Jiang; Gandus, Guido; Agarwal, Tarun; Luisier, Mathieu and Lee, Youseung, "Dynamics of van der waals charge qubit in 2D bilayers: ab initio quantum transport and qubit measurement", arXiv, Cornell University Library, DOI: arXiv:2210.07350, Oct. 2022. en_US
dc.identifier.uri https://arxiv.org/abs/2210.07350
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/8253
dc.description.abstract A van der Waals (vdW) charge qubit, electrostatically confined within two-dimensional (2D) vdW materials, is proposed as building block of future quantum computers. Its characteristics are systematically evaluated with respect to its two-level anti-crossing energy difference (Δ). Bilayer graphene (Δ ≈ 0) and a vdW heterostructure (Δ ≫ 0) are used as representative examples. Their tunable electronic properties with an external electric field define the state of the charge qubit. By combining density functional theory and quantum transport calculations, we highlight the optimal qubit operation conditions based on charge stability and energy-level diagrams. Moreover, a single-electron transistor (SET) design based on trilayer vdW heterostructures capacitively coupled to the charge qubit is introduced as measurement setup with low decoherence and improved measurement properties. It is found that a Δ greater than 20 meV results in a rapid mixing of the qubit states, which leads to a lower measurement quantity, i.e. contrast and conductance. With properly optimized designs, qubit architectures relying on 2D vdW structures could be integrated into an all-electronic quantum computing platform.
dc.description.statementofresponsibility by Jiang Cao, Guido Gandus, Tarun Agarwal, Mathieu Luisier and Youseung Lee
dc.language.iso en_US en_US
dc.publisher Cornell University Library en_US
dc.subject VdW charge qubit en_US
dc.subject Density functional theory en_US
dc.subject SET design en_US
dc.subject 2D bilayers en_US
dc.subject Ab initio quantum transport en_US
dc.title Dynamics of van der waals charge qubit in 2D bilayers: ab initio quantum transport and qubit measurement en_US
dc.type Pre-Print Archive en_US
dc.relation.journal arXiv


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