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Mixed quantum/classical theory (MQCT) approach to the dynamics of molecule-molecule collisions in complex systems. | LitMetric

AI Article Synopsis

  • Developed a theoretical approach and computer code to study energy transfer in complex molecule collisions, combining classical and quantum mechanics.
  • The ro-vibrational motion is modeled using quantum mechanics, capturing phenomena like state quantization and transition rules, while translational motion is handled classically for speed.
  • Benchmark studies show that this new method aligns well with full quantum results, allowing for the exploration of complex systems and future applications involving chiral molecules and molecule-surface collisions.

Article Abstract

We developed a general theoretical approach and a user-ready computer code that permit study of the dynamics of collisional energy transfer and ro-vibrational energy exchange in complex molecule-molecule collisions. The method is a mixture of classical and quantum mechanics. The internal ro-vibrational motion of collision partners is treated quantum mechanically using a time-dependent Schrödinger equation that captures many quantum phenomena including state quantization and zero-point energy, propensity and selection rules for state-to-state transitions, quantum symmetry and interference phenomena. A significant numerical speed up is obtained by describing the translational motion of collision partners classically, using the Ehrenfest mean-field trajectory approach. Within this framework a family of approximate methods for collision dynamics is developed. Several benchmark studies for diatomic and triatomic molecules, such as HO and ND collided with He, H and D, show that the results of MQCT are in good agreement with full-quantum calculations in a broad range of energies, especially at high collision energies where they become nearly identical to the full quantum results. Numerical efficiency of the method and massive parallelism of the MQCT code permit us to embrace some of the most complicated collisional systems ever studied, such as CH + He, CHCOOH + He and HO + HO. Application of MQCT to the collisions of chiral molecules such as CHCHCHO + He, and to molecule-surface collisions is also possible and will be pursued in the future.

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Source
http://dx.doi.org/10.1039/d3fd00166kDOI Listing

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