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October 8, 20250 citationsOpen Access

Phase-adaptive cooling of fringe-trapped nanoparticles at room temperature in hollow-core photonic crystal fiber

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SCSoumya ChakrabortyGWG. K. L. WongPKPardeep Kumar

Key Points

  • The cooling mechanism reduces the temperature of silica nanoparticles to 58.6 K at 0.5 mbar air pressure.
  • At 2 mbar air pressure, the axial center-of-mass temperature drops by half with the implemented feedback technique.
  • The optical phase modulation between counterpropagating modes creates an effective damping force without excess heating.
  • The findings align well with the analytical model, validating the new cooling approach and its implications.

Abstract

Active feedback cooling of levitated dielectric particles is a pivotal technique for creating ultrasensitive sensors and probing fundamental physics. Here we demonstrate phase-adaptive feedback cooling of silica nanoparticles optically trapped in standing-wave potential formed by two co-linearly polarized counterpropagating diffraction-free guided modes in a hollow-core photonic crystal fiber at room temperature. Unlike standard laser intensity- or Coulomb force-based feedback, our approach modulates the relative optical phase between the counterpropagating fundamental modes proportionally to the particle's axial momentum. This generates a Stokes-like dissipative force which effectively damps the center-of-mass motion without introducing excess heating and can also work with uncharged particles. At 2 mbar air pressure, the axial center-of-mass temperature of a 195 nm silica particle is reduced by half upon application of the feedback and to 58.6 K at 0.5 mbar. The measured mechanical spectra agree well with our analytical model, validating the cooling mechanism. We envision this approach will open up pathways towards long-range, coherent control of mesoscopic particles inside hollow-core fibers, offering a fiber-integrated versatile platform for future quantum manipulation.

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Cite This Study

Chakraborty et al. (2025) studied this question.

synapsesocial.com/papers/68e6a0f4718ef0a556b34081https://doi.org/10.48550/arxiv.2507.17601
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