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分子耦合对三苯基甲烷染料敏化的宽禁带硫化锌纳米聚集体中超快电子转移和电荷复合动力学的影响。

Effect of Molecular Coupling on Ultrafast Electron-Transfer and Charge-Recombination Dynamics in a Wide-Gap ZnS Nanoaggregate Sensitized by Triphenyl Methane Dyes.

作者信息

Debnath Tushar, Maity Partha, Dana Jayanta, Ghosh Hirendra N

机构信息

Radiation & Photochemistry Division, Bhabha Atomic Research Centre, Trombay, Mumbai, 400 085, India.

出版信息

Chemphyschem. 2016 Mar 3;17(5):724-30. doi: 10.1002/cphc.201500883. Epub 2015 Nov 16.

Abstract

Wide-band-gap ZnS nanocrystals (NCs) were synthesized, and after sensitizing the NCs with series of triphenyl methane (TPM) dyes, ultrafast charge-transfer dynamics was demonstrated. HRTEM images of ZnS NCs show the formation of aggregate crystals with a flower-like structure. Exciton absorption and lumimescence, due to quantum confinement of the ZnS NCs, appear at approximately 310 and 340 nm, respectively. Interestingly, all the TPM dyes (pyrogallol red, bromopyrogallol red, and aurin tricarboxylic acid) form charge-transfer complexes with the ZnS NCs, with the appearance of a red-shifted band. Electron injection from the photoexcited TPM dyes into the conduction band of the ZnS NCs is shown to be a thermodynamically viable process, as confirmed by steady-state and time-resolved emission studies. To unravel charge-transfer (both electron injection and charge recombination) dynamics and the effect of molecular coupling, femtosecond transient absorption studies were carried out in TPM-sensitized ZnS NCs. The electron-injection dynamics is pulse-width-limited in all the ZnS/TPM dye systems, however, the back electron transfer differs, depending on the molecular coupling of the sensitizers (TPM dyes). The detailed mechanisms for the above-mentioned processes are discussed.

摘要

合成了宽带隙硫化锌纳米晶体(NCs),在用一系列三苯甲烷(TPM)染料敏化这些纳米晶体后,展示了超快电荷转移动力学。硫化锌纳米晶体的高分辨透射电子显微镜(HRTEM)图像显示形成了具有花状结构的聚集晶体。由于硫化锌纳米晶体的量子限制,激子吸收和发光分别出现在约310和340纳米处。有趣的是,所有TPM染料(邻苯三酚红、溴邻苯三酚红和金精三羧酸)都与硫化锌纳米晶体形成电荷转移复合物,并出现红移带。稳态和时间分辨发射研究证实,从光激发的TPM染料向硫化锌纳米晶体导带的电子注入是一个热力学可行的过程。为了揭示电荷转移(包括电子注入和电荷复合)动力学以及分子耦合的影响,对TPM敏化的硫化锌纳米晶体进行了飞秒瞬态吸收研究。在所有硫化锌/TPM染料体系中,电子注入动力学受脉冲宽度限制,然而,反向电子转移则因敏化剂(TPM染料)的分子耦合而异。讨论了上述过程的详细机制。

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