Communications Physics (Jun 2024)

Quantum force sensing by digital twinning of atomic Bose-Einstein condensates

  • Tangyou Huang,
  • Zhongcheng Yu,
  • Zhongyi Ni,
  • Xiaoji Zhou,
  • Xiaopeng Li

DOI
https://doi.org/10.1038/s42005-024-01662-1
Journal volume & issue
Vol. 7, no. 1
pp. 1 – 7

Abstract

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Abstract High sensitivity detection plays a vital role in science discoveries and technological applications. While intriguing methods utilizing collective many-body correlations and quantum entanglements have been developed in physics to enhance sensitivity, their practical implementation remains challenging due to rigorous technological requirements. Here, we propose an entirely data-driven approach that harnesses the capabilities of machine learning, to significantly augment weak-signal detection sensitivity. In an atomic force sensor, our method combines a digital replica of force-free data with anomaly detection technique, devoid of any prior knowledge about the physical system or assumptions regarding the sensing process. Our findings demonstrate a significant advancement in sensitivity, achieving an order of magnitude improvement over conventional protocols in detecting a weak force of approximately 10−25N. The resulting sensitivity reaches $$1.7(4)\times 1{0}^{-25}\,{{{{{{{\rm{N}}}}}}}}/\sqrt{{{{{{{{\rm{Hz}}}}}}}}}$$ 1.7 ( 4 ) × 1 0 − 25 N / Hz . Our machine learning-based signal processing approach does not rely on system-specific details or processed signals, rendering it highly applicable to sensing technologies across various domains.