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February 28, 2026Fluctuation and Noise Letters0 citations

Quantum Precision Measurement Based On Non-Gaussian Quantum States: An Introductory Review

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HZHuan ZhangYXYing XiaXZXiuxing Zhang

Key Points

  • The review aims to explore the advantages of non-Gaussian quantum states in precision measurement beyond classical limits.
  • Overview of theoretical frameworks for non-Gaussian states
  • Discussion of preparation techniques for non-Gaussian states
  • Summary of experimental advancements in quantum metrology
  • Analysis of challenges and future directions for research
  • Non-Gaussian states significantly outperform Gaussian states in tasks like phase estimation and quantum imaging.
  • These states may reach or exceed the Heisenberg limit under certain conditions.
  • The review highlights the promise of non-Gaussian states for next-generation quantum sensors.

Abstract

As a cornerstone of quantum science and technology, quantum precision measurement aims to transcend the standard quantum limit (SQL) and achieve sensitivities unattainable by classical approaches by harnessing distinctive quantum resources such as entanglement, squeezing and non-Gaussianity. Within this framework, Gaussian states have historically played a central role, underpinning a series of seminal experimental advances; however, their utility in metrology is fundamentally bounded by theoretical constraints that preclude unlimited gains in measurement precision. In contrast, a growing body of recent research has revealed that non-Gaussian states–endowed with stronger quantum correlations and more pronounced non-classical characteristics — can significantly surpass Gaussian counterparts in key tasks such as phase estimation, quantum imaging and quantum sensing. Under specific conditions, these states even exhibit the potential to approach or saturate the ultimate Heisenberg limit. This review offers a comprehensive overview of the theoretical underpinnings, representative preparation methodologies, experimental progress and emerging applications of non-Gaussian states in quantum metrology. Special attention is devoted to illustrating their transformative potential for the development of next-generation quantum sensors and high-precision measurement instruments, while also addressing prevailing challenges and delineating promising future research trajectories in this rapidly advancing field.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69a286da0a974eb0d3c02263https://doi.org/10.1142/s0219477525400358
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