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Enhancing Dynamic Range of Sub-Quantum-Limit Measurements via Quantum Deamplification

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arxiv 2412.15061 v4 pith:6WW3MU4B submitted 2024-12-19 quant-ph cond-mat.quant-gas

classification quant-phcond-mat.quant-gas
keywords quantumrangedynamicdeamplificationphasesensitivityenhancingmetrology
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Balancing high sensitivity with a broad dynamic range is a fundamental challenge in measurement science, as improving one often compromises the other. While traditional quantum metrology has prioritized enhancing local sensitivity, a large dynamic range is crucial for applications such as atomic clocks, where extended phase interrogation times contribute to wider phase range. In this Letter, we introduce a novel quantum deamplification mechanism that extends dynamic range at a minimal cost of sensitivity. Our approach uses two sequential spin-squeezing operations to generate and detect an entangled probe state, respectively. We demonstrate that the optimal quantum interferometer limit can be approached through two-axis counter-twisting dynamics. Further expansion of dynamic range is possible by using sequential quantum deamplification interspersed with phase encoding processes. Additionally, we show that robustness against detection noise can be enhanced by a hybrid sensing scheme that combines quantum deamplification with quantum amplification. Our protocol is within the reach of state-of-the-art atomic-molecular-optical platforms, offering a scalable, noise-resilient pathway for entanglement-enhanced metrology.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Extending the dynamic range in quantum frequency estimation with sequential weak measurements

    quant-ph 2025-09 conditional novelty 6.0 of 10

    Sequential weak measurements followed by a final projective measurement extend the dynamic range of coherent-spin-state frequency estimation and asymptotically saturate the noiseless quantum Fisher information bound.

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