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固态中光致超快溶剂化的解析与控制

Resolving and Controlling Photoinduced Ultrafast Solvation in the Solid State.

作者信息

Delor Milan, McCarthy Dannielle G, Cotts Benjamin L, Roberts Trevor D, Noriega Rodrigo, Devore David D, Mukhopadhyay Sukrit, De Vries Timothy S, Ginsberg Naomi S

机构信息

The Dow Chemical Company , Midland, Michigan 48674, United States.

Kavli Energy NanoSciences Institute , Berkeley, California 94720, United States.

出版信息

J Phys Chem Lett. 2017 Sep 7;8(17):4183-4190. doi: 10.1021/acs.jpclett.7b01689. Epub 2017 Aug 22.

Abstract

Solid-state solvation (SSS) is a solid-state analogue of solvent-solute interactions in the liquid state. Although it could enable exceptionally fine control over the energetic properties of solid-state devices, its molecular mechanisms have remained largely unexplored. We use ultrafast transient absorption and optical Kerr effect spectroscopies to independently track and correlate both the excited-state dynamics of an organic emitter and the polarization anisotropy relaxation of a small polar dopant embedded in an amorphous polystyrene matrix. The results demonstrate that the dopants are able to rotationally reorient on ultrafast time scales following light-induced changes in the electronic configuration of the emitter, minimizing the system energy. The solid-state dopant-emitter dynamics are intrinsically analogous to liquid-state solvent-solute interactions. In addition, tuning the dopant/polymer pore ratio offers control over solvation dynamics by exploiting molecular-scale confinement of the dopants by the polymer matrix. Our findings will enable refined strategies for tuning optoelectronic material properties using SSS and offer new strategies to investigate mobility and disorder in heterogeneous solid and glassy materials.

摘要

固态溶剂化(SSS)是液态中溶剂 - 溶质相互作用的固态类似物。尽管它能够对固态器件的能量特性进行极其精细的控制,但其分子机制在很大程度上仍未得到探索。我们使用超快瞬态吸收光谱和光学克尔效应光谱,分别跟踪并关联有机发光体的激发态动力学以及嵌入非晶态聚苯乙烯基质中的小极性掺杂剂的极化各向异性弛豫。结果表明,在发光体电子构型发生光致变化后,掺杂剂能够在超快时间尺度上进行旋转重排,从而使系统能量最小化。固态掺杂剂 - 发光体动力学本质上类似于液态溶剂 - 溶质相互作用。此外,通过利用聚合物基质对掺杂剂的分子尺度限制,调节掺杂剂/聚合物孔隙率可实现对溶剂化动力学的控制。我们的研究结果将为利用SSS调节光电子材料特性提供精细策略,并为研究异质固体和玻璃态材料中的迁移率和无序性提供新策略。

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