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Domain Based Pair Natural Orbital Coupled Cluster Studies on Linear and Folded Alkane Chains

机译:线性和折叠链烷烃链的基于域的成对自然轨道耦合簇研究

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In this study the question of what is the last unbranched alkane that prefers a linear conformation over a folded one is revisited from a theoretical point of view. Geometries have been optimized carefully using the most accurate theoretical approach available to date for such systems, namely, doubly hybrid density functional theory in conjunction with larger quadruple-zeta quality basis sets. The resulting geometries deviate significantly from previously reported ones and have a significant impact on the predicted energetics. Electronic energies were calculated using the efficient and accurate domain local pair natural orbital coupled cluster method with single-, double-, and triple substitutions (DLPNO-CCSD(T)) electronic structure method. Owing to the methods efficiency, we were able to employ up to quadruple-zeta quality basis sets for all hydrocarbons up to C19H40. In conjunction with carefully designed basis set extrapolation techniques, it is estimated that the electronic energies reported in this study deviate less than 1 kJ/mol from the canonical CCSD(T) basis set limit. Thermodynamic corrections were calculated with the PW6B95-D3 functional and the def2-QZVP basis set. Our prediction is that the last linear conformer is either C16H34 or C17H36 with the latter being more probable. C18H38 can be safely ruled out as the most stable isomer at 100 K. These findings are in agreement with the elegant experimental studies of Suhm and co-workers. Deviations between the current and previous theoretical results are analyzed in detail.
机译:在这项研究中,从理论的角度重新探讨了最后一种直链烷烃比直链烷烃更优选线性构象的问题。几何形状已使用此类系统迄今可用的最准确的理论方法进行了仔细优化,即双重混合密度泛函理论与较大的四倍质量基础集结合。最终的几何形状与先前报告的几何形状有很大差异,并且对预测的能量学有重大影响。电子能量是使用高效,准确的区域局部对自然轨道耦合簇方法(具有单,双和三取代)(DLPNO-CCSD(T))电子结构方法来计算的。由于方法的效率,我们能够对高达C19H40的所有碳氢化合物使用多达四倍的Zeta质量基础集。结合精心设计的基础集外推技术,据估计,本研究报告的电子能量与规范CCSD(T)基础集极限的偏差小于1 kJ / mol。使用PW6B95-D3功能和def2-QZVP基础集计算热力学校正。我们的预测是最后一个线性构象异构体是C16H34或C17H36,后者更可能。可以肯定地认为C18H38是100 K时最稳定的异构体。这些发现与Suhm及其同事的出色实验研究一致。详细分析了当前理论结果与先前理论结果之间的差异。

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