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控制原子精确的金属纳米团簇的单光子、双光子和三光子激发荧光

Control the Single-, Two-, and Three-Photon Excited Fluorescence of Atomically Precise Metal Nanoclusters.

作者信息

Pan Peiyao, Liu Lingling, Zhang Lidi, Wei Xiao, Tian Yupeng, Kang Xi, Zhang Qiong, Zhu Manzhou

机构信息

Department of Chemistry and Centre for Atomic Engineering of Advanced Materials, Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education, Anhui University, Hefei, Anhui 230601, China.

Institutes of Physical Science and Information Technology and Anhui Province Key Laboratory of Chemistry for Inorganic/Organic Hybrid Functionalized Materials, Anhui University, Hefei, Anhui 230601, China.

出版信息

Angew Chem Int Ed Engl. 2022 Dec 12;61(50):e202213016. doi: 10.1002/anie.202213016. Epub 2022 Nov 10.

Abstract

It remains challenging to control the single-, two-, and three-photon excited fluorescence of metal nanoclusters. In this work, the control over the non-linear optics of metal nanoclusters as single-, two-, and three-photon excited fluorescence has been accomplished via exploiting the solvent effect. An emissive nanocluster, Au Ag (SPh OMe) (DPPOE) Cl , was synthesized and structurally determined. The solvent effect can not only control the fluorescence of this nanocluster, but more significantly, it can also regulate the photoluminescence nature of the cluster as single-, two-, and three-photon excited fluorescence. We concluded that the increased solution polarity, improved dipole moment, enlarged HOMO-LUMO energy gap, and reduced solution viscosity of the cluster in solutions endow them with excellent high-order multiphoton excited fluorescence. The results provide an intriguing cluster template that enables us to manipulate the linear and nonlinear optics at the atomic level.

摘要

控制金属纳米团簇的单光子、双光子和三光子激发荧光仍然具有挑战性。在这项工作中,通过利用溶剂效应实现了对金属纳米团簇作为单光子、双光子和三光子激发荧光的非线性光学的控制。合成并确定了一种发光纳米团簇Au Ag (SPh OMe) (DPPOE) Cl的结构。溶剂效应不仅可以控制该纳米团簇的荧光,更重要的是,它还可以调节该团簇作为单光子、双光子和三光子激发荧光的光致发光性质。我们得出结论,溶液中团簇的溶液极性增加、偶极矩改善、HOMO-LUMO能隙扩大和溶液粘度降低,赋予了它们优异的高阶多光子激发荧光。这些结果提供了一个有趣的团簇模板,使我们能够在原子水平上操纵线性和非线性光学。

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