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碘化钾水溶液电荷转移至溶剂光谱的新见解:表面与本体。

New Insights into the Charge-Transfer-to-Solvent Spectrum of Aqueous Iodide: Surface versus Bulk.

作者信息

Bhattacharyya Dhritiman, Mizuno Hikaru, Rizzuto Anthony M, Zhang Yuyuan, Saykally Richard J, Bradforth Stephen E

机构信息

Department of Chemistry, University of Southern California, Los Angeles, California 90089, United States.

Department of Chemistry, University of California, Berkeley, California 94720, United States.

出版信息

J Phys Chem Lett. 2020 Mar 5;11(5):1656-1661. doi: 10.1021/acs.jpclett.9b03857. Epub 2020 Feb 14.

Abstract

Liquid phase charge-transfer-to-solvent (CTTS) transitions are important, as they serve as photochemical routes to solvated electrons. In this work, broadband deep-ultraviolet electronic sum frequency generation (DUV-ESFG) and two-photon absorption (2PA) spectroscopic techniques were used to assign and compare the nature of the aqueous iodide CTTS excitations at the air/water interface and in bulk solution. In the one-photon absorption (1PA) spectrum, excitation to the 6s Rydberg-like orbital (5p → 6s) gives rise to a pair of spin-orbit split iodine states, P and P. In the 2PA spectra, the lower-energy P peak is absent and the observed 2PA peak, which is ∼0.14 eV blue-shifted relative to the upper P CTTS peak seen in 1PA, arises from 5p → 6p electronic promotion. The band observed in the ESFG spectrum is attributed to mixing of excited states involving 5p → 6p and 5p → 6s promotions caused by both vibronic coupling and the external electric field generated by asymmetric interfacial solvation.

摘要

液相电荷转移至溶剂(CTTS)跃迁很重要,因为它们是通向溶剂化电子的光化学途径。在这项工作中,采用宽带深紫外电子和频产生(DUV - ESFG)和双光子吸收(2PA)光谱技术来确定并比较空气/水界面和本体溶液中碘化盐水溶液CTTS激发的性质。在单光子吸收(1PA)光谱中,激发到类里德堡6s轨道(5p→6s)会产生一对自旋 - 轨道分裂的碘态,P和P。在2PA光谱中,较低能量的P峰不存在,观察到的2PA峰相对于1PA中看到的较高能量的P CTTS峰发生了约0.14 eV的蓝移,它源于5p→6p电子跃迁。在ESFG光谱中观察到的谱带归因于涉及5p→6p和5p→6s跃迁的激发态混合,这是由振动耦合和不对称界面溶剂化产生的外部电场引起的。

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