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March 6, 2026The Journal of Chemical Physics0 citations

Precision ultranarrow-linewidth resonance excitation (PURE) preparation of a molecular beam of nitric oxide molecules for inelastic scattering with argon

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OKO. A. KrohnDCDavid W. Chandler

Key Points

  • This research aims to demonstrate a new technique for preparing molecular beams of nitric oxide using ultranarrow-linewidth resonance excitation.
  • Utilized narrow-linewidth lasers for selective molecular excitation.
  • Employed active frequency stabilization of a quantum cascade laser.
  • Analyzed scattering interactions between a neat argon beam and velocity-selected nitric oxide molecules.
  • Achieved highly velocity-resolved molecular packet preparation with σ < 3 m/s.
  • Demonstrated well-resolved quantum diffraction oscillations in forward-scattering collisions.
  • Observed trends that align with previously studied collisions of nitric oxide and argon.

Abstract

We recently reported a novel technique that utilizes narrow-linewidth lasers to selectively excite molecules into a pure quantum state with a well-resolved, tunable distribution of velocities O. A. Krohn and D. W. Chandler, J. Phys. Chem. Lett. 15(50), 12455–12463 (2024). We refer to the preparation of molecules by this technique as precision ultranarrow-linewidth resonant excitation (PURE) preparation. Here, we pair this PURE preparation methodology with active frequency stabilization of the quantum cascade laser that drives the excitation. In doing so, highly velocity-resolved packets of molecules are possible, with the limitations of this velocity resolution set by the stability of the laser locking and the spectral linewidth of the transition. We show that side-of-fringe locking to a Doppler-broadened absorption spectrum of our target molecule is sufficiently stable for PURE preparation of molecules for long timescales (several hours) with highly resolved velocity spreads (σ 3 m/s). To demonstrate the scientific utility of this new capability, we present differential cross sections from scattering between a neat molecular beam of argon and a velocity-selected beam of nitric oxide (NO) in a pure quantum state. We observe well-resolved quantum diffraction oscillations in the forward-scattered collisions as well as general trends consistent with prior characterized collisions of NO + Ar.

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Cite This Study

Krohn et al. (2026) studied this question.

synapsesocial.com/papers/69aa70e7531e4c4a9ff5b222https://doi.org/10.1063/5.0316483
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