Aug 2026· Journal of Chemical Theory and Computation· Vol 22, pp. 8521 - 8530· 0 citations· 73 references
Medicine
Abstract
The performance of batteries is heavily influenced by the properties of their solvents, which play a crucial role in ion solvation, conductivity, and electrochemical stability. However, traditional force field models often fall short in accurately predicting these properties. This study investigates the potential of adaptive force matching (AFM) to predict a range of solvent-related properties using only electronic structure theory. To demonstrate this approach, we developed AFM models based on B3LYP-D3(BJ) for three common molecules present in battery solvents: dimethylamine (DMA), dimethyl carbonate (DMC), and tetrahydrofuran (THF). Our results reveal that AFM models significantly outperform traditional force fields, including OPLS-AA (CM1A), GAFF2, and GROMOS 54A7, in predicting key properties such as density, heat of vaporization, viscosity, diffusion constant, boiling temperature, and free energy of vaporization. Notably, the average percentage error of AFM models is approximately 13%, substantially lower than that of traditional force fields (21% for GAFF2, the best-performing empirical model). These findings underscore the promise of AFM in predicting physical properties of battery solvents, with far-reaching implications for chemistry, materials science, and related fields where accurate predictions are essential for understanding complex phenomena and designing innovative materials and systems.
Accurate prediction of solubility is crucial in various fields, including pharmaceuticals, environmental chemistry, and materials science. In this study, we demonstrate the application of Adaptive Force Matching (AFM) to predict the solubility of molecular liquids in water. By developing high-quality force fields using...
Raymond Weldon, Feng Wang· Journal of Chemical Physics· 0 citations
Ionic liquids are salts that exist in the liquid state at room temperature and exhibit high viscosity because of their strong electrostatic interactions. It was difficult to reproduce their viscosity by molecular dynamics simulations with conventional nonpolarizable force fields; however, recent development of force fi...
Lithium metal batteries (LMBs) offer high energy density, but interfacial charge-transfer kinetics remain a bottleneck for high-rate operation. In this work, we construct a library of 12 ether solvents with systematic variations in symmetry and fluorination, confirming that molecular asymmetry is an important feature t...
Il Rok Choi, Aditya Shah, Jeffrey Heo et al.· Journal of the American Chem...· 0 citations
In contrast to traditional lead-based perovskites, double perovskites are receiving considerable attention owing to their highly tunable photovoltaic performance and remarkable stability, which can be further enhanced through compositional engineering. We have theoretically investigated the structural, mechanical, dyna...
L. Bennour, K. Bouzgou, Y. Djaballah et al.· Physica Scripta· 0 citations
This study employed density functional theory (DFT) within Quantum ESPRESSO to
investigate the structural, electronic, phonon, mechanical, optical, and thermodynamic
properties of cubic KSrX₃ (X = F, Cl, Br) halide perovskites for UV optoelectronic applications.
All compounds were found to be structurally, thermodynami...
Rose P. Abang, A. Musa, R. Solomon et al.· Physics Access· 0 citations
A novel X10 benchmark set is introduced to enable an assessment of the computational performance of atomistic simulations of enthalpies of fusion for molecular materials. The fusion enthalpy, i.e. the enthalpy of melting, represents a fundamental descriptor of the solid-liquid equilibrium, and as such, the ability to p...
Jan Ludík, Ctirad Červinka· Physical Chemistry, Chemical...· 0 citations
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