Near field plasmonic gradient effects on high vacuum tip-enhanced Raman spectroscopy

被引:40
|
作者
Fang, Yurui [1 ,2 ]
Zhang, Zhenglong [1 ,3 ]
Chen, Li [1 ,4 ]
Sun, Mengtao [1 ]
机构
[1] Chinese Acad Sci, Inst Phys, Beijing Natl Lab Condensed Matter Phys, Beijing 100190, Peoples R China
[2] Chalmers Univ Technol, Dept Appl Phys, Div Bionanophoton, SE-41296 Gothenburg, Sweden
[3] Leibniz Inst Photon Technol, D-07745 Jena, Germany
[4] Univ Calif San Diego, Dept Elect & Comp Engn, La Jolla, CA 92093 USA
基金
中国国家自然科学基金;
关键词
SINGLE-MOLECULE; NANOSCALE; GOLD; SCATTERING; RESOLUTION; CRYSTALS; SURFACES; SILVER; MODES;
D O I
10.1039/c4cp03871a
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Near field gradient effects in high vacuum tip-enhanced Raman spectroscopy (HV-TERS) are a recent developing ultra-sensitive optical and spectral analysis technology on the nanoscale, based on the plasmons and plasmonic gradient enhancement in the near field and under high vacuum. HV-TERS can not only be used to detect ultra-sensitive Raman spectra enhanced by surface plasmon, but also to detect clear molecular IR-active modes enhanced by strongly plasmonic gradient. Furthermore, the molecular overtone modes and combinational modes can also be experimentally measured, where the Fermi resonance and Darling-Dennison resonance were successfully observed in HV-TERS. Theoretical calculations using electromagnetic field theory firmly supported experimental observation. The intensity ratio of the plasmon gradient term over the linear plasmon term can reach values greater than 1. Theoretical calculations also revealed that with the increase in gap distance between tip and substrate, the decrease in the plasmon gradient was more significant than the decrease in plasmon intensity, which is the reason that the gradient Raman can be only observed in the near field. Recent experimental results of near field gradient effects on HV-TERS were summarized, following the section of the theoretical analysis.
引用
收藏
页码:783 / 794
页数:12
相关论文
共 50 条
  • [21] Tip-Enhanced Raman Spectroscopy Based on Spiral Plasmonic Lens Excitation
    Gu, Kai
    Sun, Ming
    Zhang, Yang
    SENSORS, 2022, 22 (15)
  • [22] Tip-Enhanced Ultrasensitive Stokes and Anti-Stokes Raman Spectroscopy in High Vacuum
    Zhenglong Zhang
    Xiaorui Tian
    Hairong Zheng
    Hongxing Xu
    Mengtao Sun
    Plasmonics, 2013, 8 : 523 - 527
  • [23] Tip-Enhanced Ultrasensitive Stokes and Anti-Stokes Raman Spectroscopy in High Vacuum
    Zhang, Zhenglong
    Tian, Xiaorui
    Zheng, Hairong
    Xu, Hongxing
    Sun, Mengtao
    PLASMONICS, 2013, 8 (02) : 523 - 527
  • [24] Near-field heating, annealing, and signal loss in tip-enhanced Raman spectroscopy
    Zhang, Weihua
    Schmid, Thomas
    Yeo, Boon-Siang
    Zenobi, Renato
    JOURNAL OF PHYSICAL CHEMISTRY C, 2008, 112 (06): : 2104 - 2108
  • [25] Advances in tip-enhanced Raman spectroscopy
    Pettinger, Bruno
    Schambach, Philip
    Ojeda, Carlos Villagomez
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2011, 242
  • [26] Electrochemical tip-enhanced Raman spectroscopy
    Zeng, Zhicong
    Huang, Shengchao
    Huang, Tengxiang
    Li, Maohua
    Ren, Bin
    NANOIMAGING AND NANOSPECTROSCOPY III, 2015, 9554
  • [27] Nanophotonics with Tip-enhanced Raman Spectroscopy
    Verma, Prabhat
    2015 INTERNATIONAL CONFERENCE ON OPTICAL MEMS AND NANOPHOTONICS (OMN), 2015,
  • [28] Electrochemical Tip-Enhanced Raman Spectroscopy
    Zeng, Zhi-Cong
    Huang, Sheng-Chao
    Wu, De-Yin
    Meng, Ling-Yan
    Li, Mao-Hua
    Huang, Teng-Xiang
    Zhong, Jin-Hui
    Wang, Xiang
    Yang, Zhi-Lin
    Ren, Bin
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2015, 137 (37) : 11928 - 11931
  • [29] Tip-enhanced Raman spectroscopy (TERS)
    Pettinger, Bruno
    SURFACE-ENHANCED RAMAN SCATTERING: PHYSICS AND APPLICATIONS, 2006, 103 : 217 - 240
  • [30] Detection and characterization of longitudinal field for tip-enhanced Raman spectroscopy
    Hayazawa, N
    Saito, Y
    Kawata, S
    APPLIED PHYSICS LETTERS, 2004, 85 (25) : 6239 - 6241