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四乙酰乙烷的可变温度中子衍射和X射线电荷密度研究

Variable temperature neutron diffraction and X-ray charge density studies of tetraacetylethane.

作者信息

Piccoli Paula M B, Koetzle Thomas F, Schultz Arthur J, Zhurova Elizabeth A, Stare Jernej, Pinkerton A Alan, Eckert Juergen, Hadzi Dusan

机构信息

Intense Pulsed Neutron Source, Argonne National Laboratory, Argonne, Illinois 60439, USA.

出版信息

J Phys Chem A. 2008 Jul 24;112(29):6667-77. doi: 10.1021/jp800204r. Epub 2008 Jul 1.

Abstract

Single crystal neutron diffraction data have been collected on a sample of enolized 3,4-diacetyl-2,5-hexanedione (tetraacetylethane, TAE) at five temperatures between 20 and 298 K to characterize the temperature-dependent behavior of the short, strong, intramolecular hydrogen bond. Upon decreasing the temperature from 298 K to 20 K, the O2-H1 distance decreases from 1.171(11) to 1.081(2) A and the O1...H1 distance increases from 1.327(10) to 1.416(6) A. The convergence of the C-O bond lengths from inequivalent distances at low temperature to identical values (1.285(4) A) at 298 K is consistent with a resonance-assisted hydrogen bond. However, a rigid bond analysis indicates that the structure at 298 K is disordered. The disorder vanishes at lower temperatures. Short intermolecular C-H...O contacts may be responsible for the ordering at low temperature. The intramolecular O...O distance (2.432 +/- 0.006 A) does not change with temperature. X-ray data at 20 K were measured to analyze the charge density and to gain additional insight into the nature of the strong hydrogen bond. Quantum mechanical calculations demonstrate that periodic boundary conditions provide significant enhancement over gas phase models in that superior agreement with the experimental structure is achieved when applying periodicity. One-dimensional potential energy calculations followed by quantum treatment of the proton reproduce the location of the proton nearer to the O2 site reasonably well, although they overestimate the O-H distance at low temperatures. The choice of the single-point energy calculation strategy for the proton potential is justified by the fact that the proton is preferably located nearer to O2 rather than being equally distant to O1 and O2 or evenly distributed (disordered) between them.

摘要

已在20至298 K之间的五个温度下,对烯醇化的3,4 - 二乙酰基 - 2,5 - 己二酮(四乙酰乙烷,TAE)样品收集了单晶中子衍射数据,以表征短程、强的分子内氢键的温度依赖性行为。从298 K降温至20 K时,O2 - H1距离从1.171(11) Å减小至1.081(2) Å,O1...H1距离从1.327(10) Å增加至1.416(6) Å。低温下不等价的C - O键长在298 K时收敛至相同值(1.285(4) Å),这与共振辅助氢键一致。然而,刚性键分析表明298 K时的结构是无序的。该无序在较低温度下消失。短程分子间C - H...O接触可能是低温下有序化的原因。分子内O...O距离(2.432 ± 0.006 Å)不随温度变化。测量了20 K时的X射线数据,以分析电荷密度并进一步深入了解强氢键的性质。量子力学计算表明,周期性边界条件相对于气相模型有显著增强,因为应用周期性时与实验结构的一致性更好。一维势能计算后对质子进行量子处理,相当好地再现了质子更靠近O2位点的位置,尽管它们高估了低温下的O - H距离。质子势能的单点能量计算策略的选择是合理的,因为质子更倾向于位于更靠近O2的位置,而不是与O1和O2等距或在它们之间均匀分布(无序)。

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