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A Unified Approach to Solvent Effects in Chemical Reactions: Self-Consistent Reaction Density Functional Theory
Yuchang Liu1,2, Weiqiang Tang3, Peng Xie1
1University Engineering Research Center of Green Chemical New Materials, School of Chemistry and Chemical Engineering, Guangxi University, Nanning, Guangxi 530004, P. R. China.
Abstract:
Accurate prediction of solution-phase chemistry requires proper treatment of solvation effects, yet most quantum calculations either neglect solvent or employ continuum models ignoring its molecular nature. We present a self-consistent reaction density functional theory (sc-RxDFT) that couples electronic structure calculations of solute with molecular-level solvent description through bidirectional iterative optimization. Unlike sequential approaches, both solute electronic structure and solvent density are minimized self-consistently, enabling mutual polarization adaptation while maintaining computational tractability. We validate sc-RxDFT on three benchmarks: (1) solvation free energies of 15 amino acid side chain analogs, where sc-RxDFT outperforms continuum models; (2) geometry optimization of aqueous water, demonstrating stable convergence and correct polarization-induced structural changes; and (3) the SN2 reaction between chloride and chloromethane in water, where sc-RxDFT accurately predicts the reaction barrier and reproduces the single-barrier mechanism observed experimentally, while continuum models and nonself-consistent approaches fail. This framework provides a practical alternative between expensive explicit solvent simulations and approximate continuum models.
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