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      Calculation of absolute molecular entropies and heat capacities made simple†

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      Chemical Science
      The Royal Society of Chemistry

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          Abstract

          We propose a fully-automated composite scheme for the accurate and numerically stable calculation of molecular entropies by efficiently combining density-functional theory (DFT), semi-empirical methods (SQM), and force-field (FF) approximations. The scheme is systematically expandable and can be integrated seamlessly with continuum-solvation models. Anharmonic effects are included through the modified rigid-rotor-harmonic-oscillator (msRRHO) approximation and the Gibbs–Shannon formula for extensive conformer ensembles (CEs), which are generated by a metadynamics search algorithm and are extrapolated to completeness. For the first time, variations of the ro-vibrational entropy over the CE are consistently accounted-for through a Boltzmann-population average. Extensive tests of the protocol with the two standard DFT approaches B97-3c and B3LYP-D3 reveal an unprecedented accuracy with mean deviations <1 cal mol −1 K −1 (about <1–2%) for the total gas phase molecular entropy of medium-sized molecules. Even for the hardship case of extremely flexible linear alkanes (C 14H 30–C 16H 34), errors are only about 3 cal mol −1 K −1. Comprehensive tests indicate a relatively strong variation of the conformational entropy on the underlying level of theory for typical drug molecules, inferring the complex potential energy surfaces as the main source of error. Furthermore, we show some application examples for the calculation of free energy differences in typical chemical reactions.

          Abstract

          A novel scheme for the automated calculation of the conformational entropy together with a modified thermostatistical treatment provides entropies with unprecedented accuracy even for large, complicated molecules.

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          Most cited references8

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          The Mathematical Theory of Communication.

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            NIST Chemistry WebBook, NIST Standard Reference Database Number 69

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              Thermodynamics of organic compounds in the gas state

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                Author and article information

                Journal
                Chem Sci
                Chem Sci
                SC
                CSHCBM
                Chemical Science
                The Royal Society of Chemistry
                2041-6520
                2041-6539
                25 March 2021
                19 May 2021
                25 March 2021
                : 12
                : 19
                : 6551-6568
                Affiliations
                [a] Mulliken Center for Theoretical Chemistry, Institute for Physical and Theoretical Chemistry, University of Bonn Beringstr. 4 53115 Bonn Germany grimme@ 123456thch.uni-bonn.de +49-228-73-2351
                Author information
                https://orcid.org/0000-0002-8495-9504
                https://orcid.org/0000-0002-5844-4371
                Article
                d1sc00621e
                10.1039/d1sc00621e
                8139639
                34040731
                d8634603-9d03-40fc-a49b-6b95482bb2bc
                This journal is © The Royal Society of Chemistry
                History
                : 1 February 2021
                : 24 March 2021
                Page count
                Pages: 18
                Funding
                Funded by: Deutsche Forschungsgemeinschaft, doi 10.13039/501100001659;
                Award ID: Gottfried Wilhelm Leibniz-Prize
                Categories
                Chemistry
                Custom metadata
                Paginated Article

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