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金纳米粒子和亚甲基蓝分子吸附物界面处的超快电子转移。

Ultrafast electron transfer at the interface of gold nanoparticles and methylene blue molecular adsorbates.

机构信息

Department of Chemistry & Biochemistry, California State University, Northridge, 18111 Nordhoff Street, Northridge, 91330 CA, USA.

出版信息

Phys Chem Chem Phys. 2022 Jul 21;24(28):17271-17278. doi: 10.1039/d2cp02568j.

Abstract

Due to their unique property of possessing localized surface plasmon resonance (LSPR), metal nanoparticles (MNPs) have drastically impacted many applications. For instance, local field enhancement through LSPRs and plasmonic hot electron transfer are known to enhance the efficiency of MNP-based photoreactions. Here, we report on the ultrafast electron transfer from gold nanoparticles (Au-NPs) to methylene blue (MB) molecular adsorbate using femtosecond pump-probe and steady-state absorption and emission spectroscopy techniques. Although the energy band alignment of the interface allows both dipole-dipole Förster resonance energy transfer (FRET) and charge transfer, because the MB emission intensity at the Au-NPs/MB nanocomposite decreased by a factor of ∼3.6, the FRET process was ruled out. Selective excitation of LSPRs at the Au-NPs/MB nanocomposite sample in pump-probe experiments led to the formation of the MB ground-state depletion and a positive induced absorption at wavelengths shorter than ∼500 nm, which was attributed to the shoulder of the MB anion absorption. Furthermore, despite the fact that the concentration of Au-NPs in the nanocomposite sample is the same as that in the Au-NPs solution, the initial intensity of the LSPR depletion signal was about six times weaker than that in the Au-NPs sample. These observations suggest that electron transfer from excited Au-NPs to MB adsorbates took place on a time-scale that is shorter than the ∼50 fs experimental temporal resolution.

摘要

由于具有局域表面等离激元共振(LSPR)的独特性质,金属纳米粒子(MNPs)极大地影响了许多应用。例如,通过 LSPRs 和等离子体热电子转移实现的局部场增强,已知可以提高基于 MNP 的光反应的效率。在这里,我们使用飞秒泵浦探针和稳态吸收和发射光谱技术报告了金纳米粒子(Au-NPs)到亚甲蓝(MB)分子吸附物的超快电子转移。尽管界面的能带排列允许偶极-偶极Förster 共振能量转移(FRET)和电荷转移,但由于 Au-NPs/MB 纳米复合材料中的 MB 发射强度降低了约 3.6 倍,因此排除了 FRET 过程。在泵浦探针实验中选择性激发 Au-NPs/MB 纳米复合材料样品中的 LSPRs 导致 MB 基态耗尽的形成和 500nm 以下波长的正诱导吸收,这归因于 MB 阴离子吸收的肩峰。此外,尽管纳米复合材料样品中 Au-NPs 的浓度与 Au-NPs 溶液中的浓度相同,但 LSPR 耗尽信号的初始强度比 Au-NPs 样品弱约六倍。这些观察结果表明,从激发的 Au-NPs 到 MB 吸附物的电子转移发生在时间尺度上,比实验的 50fs 时间分辨率更短。

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