...
首页> 外文期刊>ACS nano >Confined Hot Electron Relaxation at the Molecular Heterointerface of the Size-Selected Plasmonic Noble Metal Nanocluster and Layered C-60
【24h】

Confined Hot Electron Relaxation at the Molecular Heterointerface of the Size-Selected Plasmonic Noble Metal Nanocluster and Layered C-60

机译:在尺寸选择的等级惰性金属纳米光栅和分层C-60的分子异常接近狭窄的热电子弛豫

获取原文
获取原文并翻译 | 示例
           

摘要

The plasmonic response of metallic nanostructures plays a key role in amplifying photocatalytic and photoelectric conversion. Since the plasmonic behavior of noble metal nanoparticles is known to generate energetic charge carriers such as hot electrons, it is expected that the hot electrons can enhance conversion efficiency if they are transferred into a neighboring molecule or semiconductor. However, the method of transferring the energized charge carriers from the plasmonically generated hot electrons to the neighboring species remains controversial. Herein, we fabricated a molecularly well-defined heterointerface between the size-selected plasmonic noble-metal nanoclusters (NCs) of Ag-n (n = 3-55)/Au-n (n = 21) and the organic C-60 film to investigate hot electron generation and relaxation dynamics using time-resolved two-photon photoemission (2PPE) spectroscopy. By tuning the NC size and the polarization of the femtosecond excitation photons, the plasmonic behavior is characterized by 2PPE intensity enhancement by 10-100 times magnitude, which emerge at n >= 9 for Ag-n NCs. The 2PPE spectra exhibit contributions from low-energy electrons forming coherent plasmonic currents and hot electrons with an excitation energy up to photon energy owing to twophoton excitation of an occupied state of the Ag-n NC below the Fermi level. The time-resolved pump-probe measurements demonstrate that plasmon dephasing generates hot electrons which undergo electron-electron scattering. However, no photoemission occurs via the charge transfer state forming Agn+C60- located in the vicinity of the Fermi level. Thus, this study reveals the mechanism of ultrafast confined hot electron relaxation within plasmonic Ag-n NCs at the molecular heterointerface.
机译:金属纳米结构的等离子体响应在放大光催化和光电转换方面起着关键作用。由于贵金属纳米颗粒的等离子体行为已知会产生高能电荷载体,例如热电子,因此,如果热电子转移到相邻的分子或半导体中,预计热电子可以提高转换效率。然而,将带电载流子从等离子体产生的热电子转移到邻近物种的方法仍然存在争议。在此,我们在Ag-n(n=3-55)/Au-n(n=21)的尺寸选择等离子体贵金属纳米团簇(NCs)和有机C-60薄膜之间制造了一个分子定义良好的异质界面,以使用时间分辨双光子光电子能谱(2PPE)研究热电子产生和弛豫动力学。通过调整NC大小和飞秒激发光子的偏振,等离子体行为的特征是2PPE强度增强10-100倍,对于Ag-n NCs,其在n>=9时出现。2PPE光谱显示了低能电子的贡献,这些低能电子形成了相干等离子体流,而热电子的激发能量高达光子能量,这是由于费米能级以下的Ag-n NC占据态的双光子激发所致。时间分辨泵-探针测量表明,等离子体退相产生热电子,并经历电子-电子散射。然而,在费米能级附近形成Agn+C60-的电荷转移态不会产生光电子。因此,本研究揭示了等离子体Ag-n NCs在分子异质界面上的超快受限热电子弛豫机制。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号