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(4+2) and (2+2) Cycloadditions of Benzyne to C60 and Zig-Zag Single-Walled Carbon Nanotubes: The Effect of the Curvature

机译:苯炔对C60和Zig-Zag单壁碳纳米管的(4 + 2)和(2 + 2)环加成:曲率的影响

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摘要

Addition of benzyne to carbon nanostructures can proceed via (4+2) (1,4-addition) or (2+2) (1,2-addition) cycloadditions depending on the species under consideration. In this work, we analyze by means of density functional theory calculations the reaction mechanisms for the (4+2) and (2+2) cycloadditions of benzyne to nanostructures of different curvature, namely, C60 and a series of zig-zag single-walled carbon nanotubes. Our DFT calculations reveal that, except for the concerted (4+2) cycloaddition of benzyne to zig-zag single-walled carbon nanotubes, all cycloadditions studied are stepwise processes with the initial formation of a biradical singly-bonded intermediate. From this intermediate, the rotation of the benzyne moiety determines the course of the reaction. The Gibbs energy profiles lead to the following conclusions: (i) except for the 1,4-addition of benzyne to a six-membered ring of C60, all 1,2- and 1,4-additions studied are exothermic processes; (ii) for C60, the (2+2) benzyne cycloaddition is the most favoured reaction pathway; (iii) for zig-zag single-walled carbon nanotubes, the (4+2) benzyne cycloaddition is preferred over the (2+2) reaction pathway; and (iv) there is a gradual decrease in the exothermicity of the reaction and an increase of energy barriers as the diameter of the nanostructure of carbon is increased. By making use of the activation strain model, it is found that the deformation of the initial reactants in the rate-determining transition state is the key factor determining the chemoselectivity of the cycloadditions with benzyne
机译:根据所考虑的物种,可以通过(4 + 2)(1,4-加成)或(2 + 2)(1,2-加成)环加成将苯炔添加到碳纳米结构中。在这项工作中,我们通过密度泛函理论计算分析了苯并(4 + 2)和(2 + 2)环加成反应对不同曲率的纳米结构(即C60和一系列之字形单原子结构)的反应机理。壁碳纳米管。我们的DFT计算表明,除了苯并环与之字形单壁碳纳米管的协同(4 + 2)环加成反应外,所有研究的环加成都是逐步形成双自由基单键中间体的过程。从该中间体,苯并炔部分的旋转决定了反应的过程。吉布斯能谱得出以下结论:(i)除了将苯炔1,4-加成到C60的六元环上之外,所有研究的1,2-和1,4-加成都是放热过程; (ii)对于C60,最优选的反应途径是(2 + 2)苯炔环加成; (iii)对于之字形单壁碳纳米管,(4 + 2)苯炔环加成反应优于(2 + 2)反应路径; (iv)随着碳纳米结构直径的增加,反应的放热逐渐降低,并且能垒增加。利用活化应变模型,发现在决定速率的过渡态中初始反应物的形变是决定苯并炔与环加成物化学选择性的关键因素。

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