Semiconductor Circuits for Quantum Computing with Electronic Wave Packets

Fuente: arXiv
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Main Authors: Pomaranski, David, Ito, Ryo, Tu, Ngoc Han, Ludwig, Arne, Wieck, Andreas D., Takada, Shintaro, Kaneko, Nobu-Hisa, Ouacel, Seddik, Bauerle, Christopher, Yamamoto, Michihisa
Format: Preprint
Published: 2024
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author Pomaranski, David
Ito, Ryo
Tu, Ngoc Han
Ludwig, Arne
Wieck, Andreas D.
Takada, Shintaro
Kaneko, Nobu-Hisa
Ouacel, Seddik
Bauerle, Christopher
Yamamoto, Michihisa
author_facet Pomaranski, David
Ito, Ryo
Tu, Ngoc Han
Ludwig, Arne
Wieck, Andreas D.
Takada, Shintaro
Kaneko, Nobu-Hisa
Ouacel, Seddik
Bauerle, Christopher
Yamamoto, Michihisa
contents Standard approaches to quantum computing require significant overhead to correct for errors. The hardware size for conventional quantum processors in solids often increases linearly with the number of physical qubits, such as for transmon qubits in superconducting circuits or electron spin qubits in quantum dot arrays. While photonic circuits based on flying qubits do not suffer from decoherence or lack of potential scalability, they have encountered significant challenges to overcome photon loss in long delay circuits. Here, we propose an alternative approach that utilizes flying electronic wave packets propagating in solid-state quantum semiconductor circuits. Using a novel time-bin architecture for the electronic wave packets, hardware requirements are drastically reduced because qubits can be created on-demand and manipulated with a common hardware element, unlike the localized approach of wiring each qubit individually. The electronic Coulomb interaction enables reliable coupling and readout of qubits. Improving upon previous devices, we realize electronic interference at the level of a single quantized mode that can be used for manipulation of electronic wavepackets. This important landmark lays the foundation for fault-tolerant quantum computing with a compact and scalable architecture based on electron interferometry in semiconductors.
format Preprint
id arxiv_https___arxiv_org_abs_2410_16244
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Semiconductor Circuits for Quantum Computing with Electronic Wave Packets
Pomaranski, David
Ito, Ryo
Tu, Ngoc Han
Ludwig, Arne
Wieck, Andreas D.
Takada, Shintaro
Kaneko, Nobu-Hisa
Ouacel, Seddik
Bauerle, Christopher
Yamamoto, Michihisa
Mesoscale and Nanoscale Physics
Quantum Physics
Standard approaches to quantum computing require significant overhead to correct for errors. The hardware size for conventional quantum processors in solids often increases linearly with the number of physical qubits, such as for transmon qubits in superconducting circuits or electron spin qubits in quantum dot arrays. While photonic circuits based on flying qubits do not suffer from decoherence or lack of potential scalability, they have encountered significant challenges to overcome photon loss in long delay circuits. Here, we propose an alternative approach that utilizes flying electronic wave packets propagating in solid-state quantum semiconductor circuits. Using a novel time-bin architecture for the electronic wave packets, hardware requirements are drastically reduced because qubits can be created on-demand and manipulated with a common hardware element, unlike the localized approach of wiring each qubit individually. The electronic Coulomb interaction enables reliable coupling and readout of qubits. Improving upon previous devices, we realize electronic interference at the level of a single quantized mode that can be used for manipulation of electronic wavepackets. This important landmark lays the foundation for fault-tolerant quantum computing with a compact and scalable architecture based on electron interferometry in semiconductors.
title Semiconductor Circuits for Quantum Computing with Electronic Wave Packets
topic Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2410.16244