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The main power of quantum sensors is achieved when the probe is composed of several particles.
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L. Xiao, Y. Chu, Q. Lin, H. Lin, W. Yi, J. Cai, and P. Xue, “Non-hermitian sensing in the absence of exceptional points,” Phys. Rev. Lett. 133
2024
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Z.-G. Hu, Y.-M. Gao, J.-F. Liu, H. Yang, M. Wang, Y. Lei, X. Zhou, J. Li, X. Cao, J. Liang, C.-Q. Hu, Z. Li, Y.-C. Lau, J.-W. Cai, and B.-B. Li, “Picotesla-sensitivity microcavity optomechanical magnetometry,” Light: Science & Applications 13
2024
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J. Gosling, A. Pontin, J. Iacoponi, P. Barker, and T. Monteiro, “Sensing directional noise baths in levitated optomechanics,” Physical Review Research 6
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S. Sarkar, F. Ciccarello, A. Carollo, and A. Bayat, “Critical non-hermitian topology induced quantum sensing,” New J. Phys. 26
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T. Ilias, D. Yang, S. F. Huelga, and M. B. Plenio, “Criticality-enhanced electromagnetic field sensor with single trapped ions,” npj Quantum Inf 10
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A. Sahoo, U. Mishra, and D. Rakshit, “Localization-driven quantum sensing,” Phys. Rev. A 109
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Z. Bao, S. Xu, Z. Song, K. Wang, L. Xiang, Z. Zhu, J. Chen, F. Jin, X. Zhu, Y. Gao, Y. Wu, C. Zhang, N. Wang, Y. Zou, Z. Tan, A. Zhang, Z. Cui, F. Shen, J. Zhong, T. Li, J. Deng, X. Zhang, H. Dong, P. Zhang, Y.-R. Liu, L. Zhao, J. Hao, H. Li, Z. Wang, C. Song, Q. Guo, B. Huang, and H. Wang, “Creating and controlling global greenberger-horne-zeilinger entanglement on quantum processors,” Nat. Commun. 15
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A. Cao, W. J. Eckner, T. Lukin Yelin, A. W. Young, S. Jandura, L. Yan, K. Kim, G. Pupillo, J. Ye, N. Darkwah Oppong, et al. , “Multi-qubit gates and schrödinger cat states in an optical clock,” Nature 634
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C. Hotter, H. Ritsch, and K. Gietka, “Combining critical and quantum metrology,” Phys. Rev. Lett. 132
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J.-G. Baak and U. R. Fischer, “Self-consistent many-body metrology,” Phys. Rev. Lett. 132
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Y. Jing, J.-J. Dong, Y.-Y. Zhang, and Z.-X. Hu, “Biorthogonal dynamical quantum phase transitions in non-hermitian systems,” Phys. Rev. Lett. 132
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A. Caprotti, M. Barbiero, M. G. Tarallo, M. G. Genoni, and G. Bertaina, “Analysis of spin-squeezing generation in cavity-coupled atomic ensembles with continuous measurements,” Quantum Sci. Technol. 9
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A. Candeloro, Z. Pazhotan, and M. G. A. Paris, “Dimension matters: precision and incompatibility in multi-parameter quantum estimation models,” Quantum Sci. Technol. 9
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B. MacLellan, P. Roztocki, S. Czischek, and R. G. Melko, “End-to-end variational quantum sensing,” npj Quantum Information 10
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S. Sarkar, A. Bayat, S. Bose, and R. Ghosh, “Exponentially-enhanced quantum sensing with many-body phase transitions,” Nat. Commun. 16
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D. Gribben, A. Sanpera, R. Fazio, J. Marino, and F. Iemini, “Quantum enhancements and entropic constraints to boundary time crystals as sensors of ac fields,” SciPost Physics 18
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M. Hassani, S. Scheiner, M. G. Paris, and D. Markham, “Privacy in networks of quantum sensors,” Physical Review Letters 134
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