van der Poll Thomas S, Zhugayevych Andriy, Chertkov Eli, Bakus Ronald C, Coughlin Jessica E, Teat Simon J, Bazan Guillermo C, Tretiak Sergei
‡Theoretical Division, Center for Nonlinear Studies and Center for Integrated Nanotechnologies, Los Alamos National Laboratory, T-12, MS B268, Los Alamos, New Mexico 87545, United States.
§Advanced Light Source, Lawrence Berkeley National Laboratory, 6 Cyclotron Road, Berkeley, California 94720, United States.
J Phys Chem Lett. 2014 Aug 7;5(15):2700-4. doi: 10.1021/jz5012675. Epub 2014 Jul 25.
Using ab initio calculations and classical molecular dynamics simulations coupled to complementary experimental characterization, four molecular semiconductors were investigated in vacuum, solution, and crystalline form. Independently, the molecules can be described as nearly isostructural, yet in crystalline form, two distinct crystal systems are observed with characteristic molecular geometries. The minor structural variations provide a platform to investigate the subtlety of simple substitutions, with particular focus on polymorphism and rotational isomerism. Resolved crystal structures offer an exact description of intermolecular ordering in the solid state. This enables evaluation of molecular binding energy in various crystallographic configurations to fully rationalize observed crystal packing on a basis of first-principle calculations of intermolecular interactions.
通过从头算计算和经典分子动力学模拟,并结合互补的实验表征,对四种分子半导体在真空、溶液和晶体形式下进行了研究。独立地,这些分子可被描述为近乎同构的,但在晶体形式下,观察到两种具有特征分子几何形状的不同晶体系统。微小的结构变化提供了一个研究简单取代细微之处的平台,特别关注多晶型和旋转异构现象。解析的晶体结构提供了固态分子间有序排列的精确描述。这使得能够评估各种晶体学构型中的分子结合能,从而在分子间相互作用的第一性原理计算基础上,充分合理化观察到的晶体堆积。