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Published on: April 4, 2016
Vibrationally Dependent Stereodynamic Control of Scattering Resonances in Cold CO + H2 Collisions
Zhenxuan Wei1, Xixi Hu2,3, Dongzheng Yang4
1Institute of Theoretical and Computational Chemistry, Key Laboratory of Mesoscopic Chemistry, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, China.
None:
Cold molecules provide a unique platform for exploring quantum phenomena. Using the Stark-induced adiabatic Raman passage (SARP) technique, it has, for example, been demonstrated that resonances are sensitive to the initial orientation/alignment of collisional partners at low collision temperatures. In this work, we investigate the stereodynamics of the following rotationally inelastic collision process through full-dimensional quantum scattering calculations, CO (v1 = 0, j1 = 0) + H2 (v2, j2 = 2) → CO (v1' = 0, j1' = 0) + H2 (v2' = v2, j2' = 0), focusing on its dependence on vibrational excitation of a collision partner (v2). The integral cross-section is shown to be overall vibrationally adiabatic with a slight red shift of 1 cm-1 per v2 for the four main resonance peaks but with irregular relative scattering amplitudes. The horizontal SARP induces completely different effects on cross-sections for one of the resonances between different vibrational states: a 92.2% suppression for v2 = 0 versus a 120.7% enhancement for v2 = 1. Our findings establish vibrational-state-selective engineering as a potential paradigm for cold collision control.
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