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用于有机多硫化物研究的密度泛函理论方法的基准测试。

Benchmark of density functional theory methods for the study of organic polysulfides.

机构信息

Department of Chemistry and Environmental Science, New Jersey Institute of Technology, Newark, New Jersey, USA.

出版信息

J Comput Chem. 2022 Dec 15;43(32):2131-2138. doi: 10.1002/jcc.27007. Epub 2022 Sep 28.

DOI:10.1002/jcc.27007
PMID:36169869
Abstract

Elemental sulfur is often used in organic synthesis as its low cost and high abundance make it a highly desirable source of sulfur atoms. However, sulfur's unpredictable catenation behavior poses challenges to its widespread usage due to difficulties in designing new reactions that can account for its multifaceted reactivity. In order to accurately model sulfur's mechanisms using computational approaches, it is necessary to identify density functional theory (DFT) methods that are accurate on these systems. This study benchmarks 12 well-known DFT functionals that include local, non-local, and hybrid methods against DLPNO-CCSD(T)/aug-cc-pV(Q+d)Z//MP2/aug-cc-pV(T+d)Z/SMD(MeCN) for the accurate treatment of organic polysulfides, taking cyanide as a nucleophile. Our benchmarking results indicate that the M06-2X and B3LYP-D3(BJ) density functionals are the most accurate for calculating reaction energies, while local functionals performed the worst. For activation energies, MN15, MN15-L, M06-2X, and ωB97X-D are the most accurate. Our analysis of structural parameters shows that all functionals perform well for ground state optimizations except B97D3, while MN15-L and M06-2X performed best for transition structure optimizations. Overall, the four hybrid functionals MN15, M06-2X, ωB97X-D, and B3LYP-D3(BJ) appear adequate for studying the reaction mechanisms of polysulfides.

摘要

元素硫在有机合成中经常被使用,因为其低成本和高丰度使其成为硫原子的理想来源。然而,硫的不可预测的链状行为由于难以设计新的反应来解释其多方面的反应性,对其广泛应用构成了挑战。为了使用计算方法准确地模拟硫的机制,有必要确定对这些系统准确的密度泛函理论(DFT)方法。本研究针对有机多硫化物,以氰化物为亲核试剂,对 12 种著名的 DFT 函数进行基准测试,这些函数包括局部、非局部和混合方法,与 DLPNO-CCSD(T)/aug-cc-pV(Q+d)Z//MP2/aug-cc-pV(T+d)Z/SMD(MeCN) 进行对比,以准确处理。我们的基准测试结果表明,M06-2X 和 B3LYP-D3(BJ)密度泛函对于计算反应能是最准确的,而局部泛函的表现最差。对于活化能,MN15、MN15-L、M06-2X 和 ωB97X-D 是最准确的。我们对结构参数的分析表明,除了 B97D3 外,所有函数在基态优化方面表现良好,而 MN15-L 和 M06-2X 在过渡态优化方面表现最佳。总的来说,四种混合函数 MN15、M06-2X、ωB97X-D 和 B3LYP-D3(BJ)似乎足以研究多硫化物的反应机制。

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