Structure and Dielectric Properties of Water and Aqueous Solutions Using Neural Network Quantum Molecular Dynamics
ORAL
Abstract
The excellent solvation properties of water are responsible for its role in life-sustaining biological processes and for its importance to several technological applications. The structure and dynamics of aqueous solutions are highly complex, composed of transient hydrogen bonding and continuously reorganized solvation shells, which are difficult to characterize experimentally. Further, the dynamical response of these systems that are dominated by the restructuring of the hydrogen bond network is still unknown. In this study, we use neural network quantum molecular dynamics (NNQMD) to capture quantum-mechanically accurate molecular configurations and evolution of the hydrogen bond network in an aqueous solution of LiOH as a function of concentration. We further probe the dynamic response of LiOH solutions by quantifying the dielectric constant, , using the variance of the dipole moment along a long molecular dynamics trajectory in the canonical ensemble. The polarization fluctuations are computed with quantum accuracy using a secondary neural network that uses Wannier Functions to encode many-body polarization effects.
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Presenters
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RURU MA
University of Southern California
Authors
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RURU MA
University of Southern California
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Aravind Krishnamoorthy
University of Southern California
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Nitish Baradwaj
University of Southern California
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Ken-ichi Nomura
University of Southern California, Univ of Southern California
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Kohei Shimamura
Kumamoto University
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Pankaj Rajak
University of Southern California
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Fuyuki Shimojo
Kumamoto University, Kumamoto Univ
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Aiichiro Nakano
University of Southern California
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Rajiv K Kalia
Univ of Southern California
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Priya Vashishta
University of Southern California