AI Article Synopsis

  • Spontaneous vibrational Raman scattering involves quantizing light and is generally viewed as incoherent due to the lack of phase relationships in the scattered light.
  • Researchers investigated the correct quantum state for molecules after Stokes scattering by measuring time-resolved coincidences of Stokes and anti-Stokes photons in a liquid with varying vibrational frequencies.
  • The findings suggest that the correlations between the Stokes and anti-Stokes photons arise from a collective vibrational quantum state, indicating that the coherence level of the vibrational state is influenced by the experimental setup rather than being a fixed property of the material.

Article Abstract

Spontaneous vibrational Raman scattering is a ubiquitous form of light-matter interaction whose description necessitates quantization of the electromagnetic field. It is usually considered as an incoherent process because the scattered field lacks any predictable phase relationship with the incoming field. When probing an ensemble of molecules, the question therefore arises: What quantum state should be used to describe the molecular ensemble following spontaneous Stokes scattering? We experimentally address this question by measuring time-resolved Stokes-anti-Stokes two-photon coincidences on a molecular liquid consisting of several sub-ensembles with slightly different vibrational frequencies. When spontaneously scattered Stokes photons and subsequent anti-Stokes photons are detected into a single spatiotemporal mode, the observed dynamics is inconsistent with a statistical mixture of individually excited molecules. Instead, we show that the data are reproduced if Stokes-anti-Stokes correlations are mediated by a collective vibrational quantum, i.e. a coherent superposition of all molecules interacting with light. Our results demonstrate that the degree of coherence in the vibrational state of the liquid is not an intrinsic property of the material system, but rather depends on the optical excitation and detection geometry.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10192212PMC
http://dx.doi.org/10.1038/s41467-023-38483-9DOI Listing

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