Entanglement-enhanced nanoscale single-spin sensing
成果类型:
Article
署名作者:
Zhou, Xu; Wang, Mengqi; Ye, Xiangyu; Sun, Haoyu; Guo, Yuhang; Han, Shuo; Chai, Zihua; Ji, Wentao; Xia, Kangwei; Shi, Fazhan; Wang, Ya; Du, Jiangfeng
署名单位:
Chinese Academy of Sciences; University of Science & Technology of China, CAS; Hefei National Laboratory; Chinese Academy of Sciences; University of Science & Technology of China, CAS; Chinese Academy of Sciences; University of Science & Technology of China, CAS; Zhejiang University; Zhejiang University
刊物名称:
NATURE
ISSN/ISSBN:
0028-0836; 1476-4687
DOI:
10.1038/s41586-025-09790-6
发表日期:
2025-11-27
关键词:
RESONANCE-SPECTROSCOPY
noise
transport
摘要:
Detecting individual spins-including stable and metastable states-represents a fundamental challenge in quantum sensing, with broad applications across condensed matter physics1,2, quantum chemistry3 and single-molecule magnetic resonance imaging4,5. Although nitrogen-vacancy (NV) centres in diamond have emerged as powerful nanoscale sensors, their performance for single-spin detection remains constrained by substantial environmental noise and restricted sensing volume6,7. Here we propose and demonstrate an entanglement-enhanced sensing protocol that overcomes these limitations through the strategic use of entangled NV pairs. Our approach achieves a 3.4-fold enhancement in sensitivity and a 1.6-fold improvement in spatial resolution relative to single NV centres under ambient conditions. The protocol uses carefully engineered entangled states that amplify target spin signals through quantum interference while suppressing environmental noise. Crucially, we extend these capabilities to resolve metastable single-spin dynamics, directly observing stochastic transitions between different spin states by identifying state-dependent coupling strengths. This dual functionality enables simultaneous detection of static and dynamic spin species for studying complex quantum systems. The achieved performance establishes entanglement-enhanced sensing as a viable pathway towards atomic-scale characterization of quantum materials and interfaces.
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