Structural Elucidation of Photoluminescent Carbon Nanodots through Quenching Kinetics with Molecular Electron Donors and Acceptors

IF 2.2 3区 化学 Q3 CHEMISTRY, PHYSICAL Chemphyschem Pub Date : 2025-01-29 DOI:10.1002/cphc.202400952
Almaz S. Jalilov, Wan Ryan Asri, Asem Alenaizan
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Abstract

Photoluminescence (PL) quenching mechanism and dynamics of carbon nanodots (CNDs) with molecular electron donors and acceptors are investigated by means of time-resolved emission spectroscopy. CNDs are prepared by direct pyrolysis from two different precursors, di-ammonium citrate and tri-ammonium citrate, at two different temperatures, 150 °C and 180 °C, for 40 hours under ambient conditions. Despite the small changes in the pyrolysis temperature, rather significant differences are observed in the structure, PL quantum yield, and hence observation of the important characteristics of PL quenching kinetics in the presence of benzophenone (BP) and dimethoxybenzene (DMB) as an electron acceptor and donor, respectively. Molecular dynamic simulations of CNDs in the presence of molecular quenchers support the spectroscopic data and the photophysical behavior of CNDs, and the distinct PL quenching dynamics are attributed to the hydrogen bonding interaction in the case of BP and the π π-stacking interaction in the case of DMB as PL quenchers.

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用分子电子供体和受体猝灭动力学研究光致发光碳纳米点的结构。
采用时间分辨发射光谱技术研究了具有分子电子供体和受体的碳纳米点(CNDs)的光致发光(PL)猝灭机理和动力学。采用柠檬酸二铵和柠檬酸三铵两种不同的前驱体,在150℃和180℃两种不同的温度下,在常温下40小时直接热解制得CNDs。尽管热解温度变化不大,但在二苯甲酮和二甲氧基苯分别作为电子受体和给体存在时,在结构和PL量子产率方面观察到显著差异,从而观察到PL猝灭动力学的重要特征。在分子猝灭剂的作用下,CNDs的分子动力学模拟支持了CNDs的光谱数据和光物理行为,其明显的PL猝灭动力学归因于BP时的氢键相互作用和DMB作为PL猝灭剂时的π π堆积相互作用。
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来源期刊
Chemphyschem
Chemphyschem 化学-物理:原子、分子和化学物理
CiteScore
4.60
自引率
3.40%
发文量
425
审稿时长
1.1 months
期刊介绍: ChemPhysChem is one of the leading chemistry/physics interdisciplinary journals (ISI Impact Factor 2018: 3.077) for physical chemistry and chemical physics. It is published on behalf of Chemistry Europe, an association of 16 European chemical societies. ChemPhysChem is an international source for important primary and critical secondary information across the whole field of physical chemistry and chemical physics. It integrates this wide and flourishing field ranging from Solid State and Soft-Matter Research, Electro- and Photochemistry, Femtochemistry and Nanotechnology, Complex Systems, Single-Molecule Research, Clusters and Colloids, Catalysis and Surface Science, Biophysics and Physical Biochemistry, Atmospheric and Environmental Chemistry, and many more topics. ChemPhysChem is peer-reviewed.
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