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锯齿形碳纳米管中[4 + 2]和[5 + 4]环加成反应的预测:双峰过渡态的密度泛函理论计算

Prediction of the [4 + 2]- and [5 + 4]-cycloaddition reactions in zig-zag carbon nanotubes an ambimodal transition state: density functional theory calculations.

作者信息

Sangolkar Akanksha Ashok, Pawar Ravinder

机构信息

Department of Chemistry, National Institute of Technology (NIT) Warangal Telangana-506004 India

出版信息

RSC Adv. 2020 Mar 17;10(19):11111-11120. doi: 10.1039/c9ra10252c. eCollection 2020 Mar 16.

Abstract

A unique type of chemical reaction known as an ambimodal reaction has drawn tremendous attention owing to its intriguing feature of forming multiple (two or more) products from the same (single) transition state. In contrast to conventional reactions, bifurcation of the potential energy surface takes place in ambimodal reactions. Density functional theory (DFT) based calculations were performed to probe the Diels-Alder (DA) cycloaddition reactions of various carbon nanotubes (CNTs) with 1,3-butadiene. The present investigation reveals the possibility of ambimodal transition state formation on a potential energy surface (PES) corresponding to an unusual [5 + 4]-cycloadduct along with the conventional [4 + 2]-cycloadduct. The ground state of the [5 + 4]-cycloadduct obtained from butadiene and the H-terminated CNTs is a triplet (T) state, but on the other hand the [4 + 2]-cycloadduct is a singlet (S) state. The [5 + 4]-adduct is energetically more stable in comparison with the [4 + 2]-adduct. The possibility of the formation of the [5 + 4]-adduct is validated using frontier molecular orbitals. The length of the nanotube significantly influences the overall kinetics and thermodynamics of the reaction.

摘要

一种独特的化学反应类型,即双峰反应,因其从相同(单一)过渡态形成多种(两种或更多)产物这一引人入胜的特性而备受关注。与传统反应不同,双峰反应中势能面会发生分支。基于密度泛函理论(DFT)进行了计算,以探究各种碳纳米管(CNT)与1,3 - 丁二烯的狄尔斯 - 阿尔德(DA)环加成反应。本研究揭示了在对应于异常[5 + 4] - 环加合物以及传统[4 + 2] - 环加合物的势能面(PES)上形成双峰过渡态的可能性。由丁二烯和氢端基化碳纳米管得到的[5 + 4] - 环加合物的基态是三重态(T),而另一方面,[4 + 2] - 环加合物是单重态(S)。与[4 + 2] - 加合物相比,[5 + 4] - 加合物在能量上更稳定。利用前线分子轨道验证了形成[5 + 4] - 加合物的可能性。纳米管的长度对反应的整体动力学和热力学有显著影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/625b/9050518/ea6390b27282/c9ra10252c-s1.jpg

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