DOE OSTI · 2554757
Multiscale Nuclear-Electronic Orbital Quantum Dynamics in Complex Environments
Abstract
Many renewable energy conversion processes rely on the movement of protons as well as electrons through either electrocatalysis or photoexcitation. The simulation of such processes requires a quantum mechanical description of coupled nuclear-electronic dynamics in a solvent or heterogeneous chemical environment. The overall objective of this project is the development of theoretical and computational capabilities for simulating nuclear-electronic quantum dynamics in complex environments and the creation of high-performance, open-source software. This multiscale framework will enable simulations of the real-time dynamics of nonequilibrium excited state proton-coupled electron transfer, quantum decoherence, vibronic energy transfer, and ultrafast radiolysis, as well as their associated time-resolved multidimensional spectroscopies. An important outcome of this project will be a sustainable, reusable, and interoperable open-source software ecosystem. This software will be designed for emerging exascale and future national leadership computers. Another key outcome will be a multiscale quantum dynamics method and software enabling simulations of nonequilibrium nuclear-electronic quantum dynamics in complex environments.
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Hammes-Schiffer, Sharon [Yale Univ., New Haven, CT (United States)], Li, Xiaosong [Yale Univ., New Haven, CT (United States)]. 2025-04-11. Multiscale Nuclear-Electronic Orbital Quantum Dynamics in Complex Environments. https://doi.org/10.2172/2554757
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