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阐明模型体系异丙基硫代呫吨酮中复杂的三重态动力学。

Elucidating complex triplet-state dynamics in the model system isopropylthioxanthone.

作者信息

Liaros Nikolaos, Gutierrez Razo Sandra A, Thum Matthew D, Ogden Hannah M, Zeppuhar Andrea N, Wolf Steven, Baldacchini Tommaso, Kelley Matthew J, Petersen John S, Falvey Daniel E, Mullin Amy S, Fourkas John T

机构信息

Department of Chemistry & Biochemistry, University of Maryland, College Park, MD 20742, USA.

Newport Corporation, 1791 Deere Avenue, Irvine, CA 92606, USA.

出版信息

iScience. 2021 Dec 9;25(1):103600. doi: 10.1016/j.isci.2021.103600. eCollection 2022 Jan 21.

Abstract

We introduce techniques for probing the dynamics of triplet states. We employ these tools, along with conventional techniques, to develop a detailed understanding of a complex chemical system: a negative-tone, radical photoresist for multiphoton absorption polymerization in which isopropylthioxanthone (ITX) is the photoinitiator. This work reveals that the same color of light used for the 2-photon excitation of ITX, leading to population of the triplet manifold through intersystem crossing, also depletes this triplet population via linear absorption followed by reverse intersystem crossing (RISC). Using spectroscopic tools and kinetic modeling, we identify the reactive triplet state and a non-reactive reservoir triplet state. We present compelling evidence that the deactivation channel involves RISC from an excited triplet state to a highly vibrationally excited level of the electronic ground state. The work described here offers the enticing possibility of understanding, and ultimately controlling, the photochemistry and photophysics of a broad range of triplet processes.

摘要

我们介绍了探测三重态动力学的技术。我们运用这些工具,结合传统技术,来深入了解一个复杂的化学体系:一种用于多光子吸收聚合的负性光刻胶,其中异丙基硫杂蒽酮(ITX)是光引发剂。这项工作表明,用于双光子激发ITX的相同颜色的光,通过系间窜越导致三重态能级的填充,也会通过线性吸收随后的反向系间窜越(RISC)消耗该三重态的粒子数。利用光谱工具和动力学模型,我们确定了反应性三重态和非反应性储存三重态。我们提供了令人信服的证据,表明失活通道涉及从激发三重态到电子基态高振动激发态的RISC。这里描述的工作提供了诱人的可能性,即理解并最终控制广泛的三重态过程的光化学和光物理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/83d0/8717599/90e1e33830f2/fx1.jpg

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