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Isotopic Effect in Double Proton Transfer Process of Porphycene Investigated by Enhanced QM/MM Method
Published on: July 19, 2019
Escaping Vibrational Purgatory: Hybrid kMC/MD Algorithms for Atomistic Simulations of Slow Reaction Chemistry
Dylan M Gilley1, Vignesh Sathyaseelan1, Brett M Savoie2
1Davidson School of Chemical Engineering, Purdue University, West Lafayette, Indiana 47906, United States.
Abstract:
Atomistic simulations provide essential mechanistic insights into chemical processes, yet many important phenomena in chemistry and materials science occur on time scales that are inaccessible to molecular dynamics. Existing computational approaches force a choice between atomic resolution on relatively short time scales or phenomenological descriptions of long-time behavior. Compounding this difficulty, state-of-the-art hybrid methods inadequately address common phenomena such as spatial heterogeneity and disparate reaction kinetics landscapes. Here, this gap is addressed with the introduction of the Hybrid kinetic Monte Carlo/Molecular Dynamics (HkMCMD) algorithm, which decouples reactive event selection from vibrational dynamics to enable the use of kMC for time evolution. The algorithm incorporates three key components: (1) kMC-based timekeeping that advances time according to reactive events rather than atomic vibrations; (2) dynamic reaction rate scaling that detects and escapes pseudosteady states in which fast reactions dominate; and (3) spatially resolved diffusion calculations that capture heterogeneous transport with a voxel-based analysis. Validation on model systems demonstrates accurate dynamics across nanosecond to second time scales, computational savings of up to 4 orders of magnitude for systems with disparate reaction rates, and a quantitatively accurate treatment of diffusion-limited kinetics. This approach enables atomic-scale investigation of previously inaccessible slow chemical processes while retaining full configurational detail between reactive events.
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