Emission and Coherent Control of Levitons in Graphene

Fuente: arXiv
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Main Authors: Assouline, A., Pugliese, L., Chakraborti, H., Lee, Seunghun, Bernabeu, L., Jo, M., Watanabe, K., Taniguchi, T., Glattli, D. C., Kumada, N., Sim, H. -S., Parmentier, F. D., Roulleau, P.
Format: Preprint
Published: 2024
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author Assouline, A.
Pugliese, L.
Chakraborti, H.
Lee, Seunghun
Bernabeu, L.
Jo, M.
Watanabe, K.
Taniguchi, T.
Glattli, D. C.
Kumada, N.
Sim, H. -S.
Parmentier, F. D.
Roulleau, P.
author_facet Assouline, A.
Pugliese, L.
Chakraborti, H.
Lee, Seunghun
Bernabeu, L.
Jo, M.
Watanabe, K.
Taniguchi, T.
Glattli, D. C.
Kumada, N.
Sim, H. -S.
Parmentier, F. D.
Roulleau, P.
contents Flying qubits encode quantum information in propagating modes instead of stationary discrete states. Although photonic flying qubits are available, the weak interaction between photons limits the efficiency of conditional quantum gates. Conversely, electronic flying qubits can use Coulomb interactions, but the weaker quantum coherence in conventional semiconductors has hindered their realization. In this work, we engineered on-demand injection of a single electronic flying qubit state and its manipulation over the Bloch sphere. The flying qubit is a Leviton propagating in quantum Hall edge channels of a high-mobility graphene monolayer. Although single-shot qubit readout and two-qubit operations are still needed for a viable manipulation of flying qubits, the coherent manipulation of an itinerant electronic state at the single-electron level presents a highly promising alternative to conventional qubits.
format Preprint
id arxiv_https___arxiv_org_abs_2412_09918
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Emission and Coherent Control of Levitons in Graphene
Assouline, A.
Pugliese, L.
Chakraborti, H.
Lee, Seunghun
Bernabeu, L.
Jo, M.
Watanabe, K.
Taniguchi, T.
Glattli, D. C.
Kumada, N.
Sim, H. -S.
Parmentier, F. D.
Roulleau, P.
Mesoscale and Nanoscale Physics
Flying qubits encode quantum information in propagating modes instead of stationary discrete states. Although photonic flying qubits are available, the weak interaction between photons limits the efficiency of conditional quantum gates. Conversely, electronic flying qubits can use Coulomb interactions, but the weaker quantum coherence in conventional semiconductors has hindered their realization. In this work, we engineered on-demand injection of a single electronic flying qubit state and its manipulation over the Bloch sphere. The flying qubit is a Leviton propagating in quantum Hall edge channels of a high-mobility graphene monolayer. Although single-shot qubit readout and two-qubit operations are still needed for a viable manipulation of flying qubits, the coherent manipulation of an itinerant electronic state at the single-electron level presents a highly promising alternative to conventional qubits.
title Emission and Coherent Control of Levitons in Graphene
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2412.09918