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新型受阻路易斯酸碱对引发二硫键解离机制的计算机模拟研究

In Silico Investigation of the Mechanism of Disulfide Bond Dissociation by New Frustrated Lewis Pairs.

作者信息

Sinha Swapan, Giri Santanab

机构信息

School of Applied Science and Humanities, Haldia Institute of Technology, Haldia 721657, India.

Maulana Abul Kalam Azad University of Technology, Haringhata 741249, India.

出版信息

J Phys Chem A. 2024 Jan 11;128(1):97-106. doi: 10.1021/acs.jpca.3c06351. Epub 2023 Dec 27.

Abstract

Understanding the mechanism of disulfide bond cleavage is important in various scientific disciplines including organic synthesis, catalysis, and biochemistry. In this study, an in silico investigation has been carried out for the dissociation of disulfide bonds using newly designed frustrated Lewis pairs (FLPs). The study revealed that the cleavage of the disulfide bond by the FLP P(Bu)/B(CNBSHF) can also be used like the conventional FLP (Bu)P/B(CF). It has been observed that the reaction is almost thermoneutral in the gas phase but exothermic in nonpolar solvents, such as toluene, heptane, and hexane. Furthermore, the natural bond orbital (NBO) describes insights into the role of FLPs in facilitating this reaction. Additionally, reaction force and force constant studies shed light on the energy requirements for completing the reaction and the synchronous nature of the dissociation process, respectively. Reaction electronic flux (REF) and its separations give the pattern of electronic activity during the chemical reaction. Extended transition state-natural orbitals for chemical valence (ETS-NOCV) and principal interacting orbital (PIO) analysis provide valuable information about the orbital interactions during the chemical reaction.

摘要

理解二硫键断裂的机制在包括有机合成、催化和生物化学在内的各种科学学科中都很重要。在本研究中,利用新设计的受阻路易斯对(FLP)对二硫键的解离进行了计算机模拟研究。研究表明,FLP P(Bu)/B(CNBSHF)对二硫键的断裂作用与传统的FLP (Bu)P/B(CF)类似。据观察,该反应在气相中几乎是热中性的,但在非极性溶剂(如甲苯、庚烷和己烷)中是放热的。此外,自然键轨道(NBO)揭示了FLP在促进该反应中的作用。此外,反应力和力常数研究分别阐明了完成反应所需的能量以及解离过程的同步性质。反应电子通量(REF)及其分离给出了化学反应过程中的电子活性模式。扩展过渡态-化学价自然轨道(ETS-NOCV)和主要相互作用轨道(PIO)分析提供了有关化学反应过程中轨道相互作用的有价值信息。

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