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Real-time imaging of standing-wave patterns in microresonators

  • Haochen Yan
  • , Alekhya Ghosh
  • , Arghadeep Pal
  • , Hao Zhang
  • , Toby Bi
  • , George Ghalanos
  • , Shuangyou Zhang
  • , Lewis Hill
  • , Yaojing Zhang
  • , Yongyong Zhuang
  • , Jolly Xavier
  • , Pascal Del’Haye

Research output: Contribution to journalArticlepeer-review

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Abstract

Real-time characterization of microresonator dynamics is important for many applications. In particular, it is critical for near-field sensing and understanding light–matter interactions. Here, we report camera-facilitated imaging and analysis of standing wave patterns in optical ring resonators. The standing wave pattern is generated through bidirectional pumping of a microresonator, and the scattered light from the microresonator is collected by a short-wave infrared (SWIR) camera. The recorded scattering patterns are wavelength dependent, and the scattered intensity exhibits a linear relation with the circulating power within the microresonator. By modulating the relative phase between the two pump waves, we can control the generated standing waves’ movements and characterize the resonator with the SWIR camera. The visualized standing wave enables subwavelength distance measurements of scattering targets with nanometer-level accuracy. This work opens broad avenues for applications in on-chip near-field (bio)sensing, real-time characterization of photonic integrated circuits, and backscattering control in telecom systems.
Original languageEnglish
Article numbere2313981121
Number of pages7
JournalProceedings of the National Academy of Sciences
Volume121
Issue number10
DOIs
Publication statusPublished - 27 Feb 2024

Funding

This work was supported by the European Union\u2019s H2020 ERC Starting Grant 756966, the Marie Curie Innovative Training Network \u201CMicrocombs\u201D 812818, and the Max Planck Society. ACKNOWLEDGMENTS. This work was supported by the European Union\u2019s H2020 ERC Starting Grant 756966, the Marie Curie Innovative Training Network \u201CMicrocombs\u201D 812818, and the Max Planck Society.

Keywords

  • microresonator
  • standing wave
  • near field sensing
  • integrated photonics
  • spectroscopy

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