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Main Authors: He, Jingyan, Tian, Yu, Hu, Zhiyi, Ye, Runchuan, Wang, Xiangyu, Lu, Dawei, Xu, Nanyang
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2409.03341
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author He, Jingyan
Tian, Yu
Hu, Zhiyi
Ye, Runchuan
Wang, Xiangyu
Lu, Dawei
Xu, Nanyang
author_facet He, Jingyan
Tian, Yu
Hu, Zhiyi
Ye, Runchuan
Wang, Xiangyu
Lu, Dawei
Xu, Nanyang
contents Quantum state readout plays a pivotal role in quantum technologies, spanning applications in sensing, computation, and secure communication. In this work, we introduce a new approach for efficiently reading populations of hybrid-spin states in the nitrogen-vacancy center of diamond using a single laser pulse, which utilizes the excited state level anti-crossing mechanism at around 500 Gs. Reading spin state populations through this approach achieves the same outcome as traditional quantum state diagonal tomography but significantly reduces the experimental time by an order of magnitude while maintaining fidelity. Moreover, this approach may be extended to encompass full-state tomography, thereby obviating the requirement for a sequence of spin manipulations and mitigating errors induced by decoherence throughout the procedure.
format Preprint
id arxiv_https___arxiv_org_abs_2409_03341
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Direct Readout of Nitrogen-Vacancy Hybrid-Spin Quantum Register in Diamond by Photon Arrival Time Analysis
He, Jingyan
Tian, Yu
Hu, Zhiyi
Ye, Runchuan
Wang, Xiangyu
Lu, Dawei
Xu, Nanyang
Quantum Physics
Quantum state readout plays a pivotal role in quantum technologies, spanning applications in sensing, computation, and secure communication. In this work, we introduce a new approach for efficiently reading populations of hybrid-spin states in the nitrogen-vacancy center of diamond using a single laser pulse, which utilizes the excited state level anti-crossing mechanism at around 500 Gs. Reading spin state populations through this approach achieves the same outcome as traditional quantum state diagonal tomography but significantly reduces the experimental time by an order of magnitude while maintaining fidelity. Moreover, this approach may be extended to encompass full-state tomography, thereby obviating the requirement for a sequence of spin manipulations and mitigating errors induced by decoherence throughout the procedure.
title Direct Readout of Nitrogen-Vacancy Hybrid-Spin Quantum Register in Diamond by Photon Arrival Time Analysis
topic Quantum Physics
url https://arxiv.org/abs/2409.03341