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Coupled-Cluster Theory for Water Empowered by Quantum Fragmentation and Deep Learning
Jinfeng Liu1, Xuchao Zhou1, Jiabao Chen1
1School of Science, School of Basic Medicine and Clinical Pharmacy, China Pharmaceutical University, Nanjing210009, China.
Abstract:
Water exhibits many anomalous properties, which have given rise to uninterrupted interest in it. A large number of theoretical models have been proposed to elucidate the unique behavior of water, yet the long-sought-after "universal water model" capable of describing the properties of water across diverse thermodynamic conditions remains elusive. Herein, combining advanced fragment-based quantum mechanical calculation and deep learning approach, we present a Deep neural network Potential at the Coupled Cluster considering single, double, and perturbative triple excitations (CCSD(T)) level of theory (DP-CC) to represent the first-principles potential energy surface of water. Utilizing the DP-CC potential, our simulations demonstrate overall good agreement with experimental observations regarding the structural, dynamical, and thermodynamic properties of liquid water and ice Ih. The DP-CC potential provides a reliable way for efficient coupled-cluster-level simulations of liquid water and ice Ih, which may contribute to a better understanding of the origin of the anomalous water properties.
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