论文标题

部分可观测时空混沌系统的无模型预测

Adamantanes as white-light emitters: Controlling arrangement and functionality by external Coulomb forces

论文作者

Belz, Jürgen, Haust, Johannes, Müller, Marius J., Eberheim, Kevin, Schwan, Sebastian, Gowrisankar, Saravanan, Hüppe, Franziska, Beyer, Andreas, Schreiner, Peter R., Mollenhauer, Doreen, Sanna, Simone, Chatterjee, Sangam, Volz, Kerstin

论文摘要

官能化的金刚烷分子簇材料显示出当前不清的结构起源的高瞬态非线性光学性质。包括分子簇的化合物中的几种相互作用机制,它们的分子间和分子内相互作用以及其电子系统的相互作用以及骨架的振动是解释这些非线性光学特性的可行概念。我们表明,还必须考虑瞬态库仑力,因为它们可以导致分子内结构转化和晶体中分子间重排。两者都强烈影响非线性光学特性。此外,选择性溴功能化可以触发分子的光化学重排。研究化合物内的结构和化学键是通过电子衍射和电子能量损耗光谱法在其非线性发射的不同阶段的激光照射方面进行了研究。观察到的瞬态结构和化学状态通过电子辐照过程中的类似观察结果进行了基准测试,这使结构变化的量化成为可能,并允许与第一原理计算的相关性。功能化及其随后利用光化学效应的用法可以增强两光子的吸收或促进白光发射而不是第二谐波产生。

Functionalized adamantane molecular cluster materials show highly transient nonlinear optical properties of currently unclear structural origin. Several interaction mechanisms in compounds comprising molecular clusters, their inter- and intramolecular interactions as well as the interplay of their electronic systems and vibrations of their backbone are viable concepts to explain these nonlinear optical properties. We show that transient Coulomb forces also have to be considered as they can lead to intramolecular structure transformations and intermolecular rearrangements in the crystal. Both strongly influence the nonlinear optical properties. Moreover, selective bromine functionalization can trigger a photochemical rearrangement of the molecules. The structure and chemical bonding within the compounds are investigated in dependence on the laser irradiation at different stages of their nonlinear emission by electron diffraction and electron energy loss spectroscopy. The transient structural and chemical states observed are benchmarked by similar observations during electron irradiation, which makes quantification of structural changes possible and allows the correlation with first principles calculations. The functionalization and its subsequent usage to exploit photochemical effects can either enhance two-photon absorption or facilitate white-light emission rather than second-harmonic generation.

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