Acta Optica Sinica, Volume. 42, Issue 5, 0524001(2022)

Nickel Foam Coupled Gold Nanostructures Enhanced Raman Scattering

Hongxian Chen, Ning Sun, and Jie Zhang*
Author Affiliations
  • Key Laboratory of Optoelectronic Technology & Systems, Ministry of Education, Chongqing University, Chongqing 400044, China
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    References(28)

    [1] Pettinger B, Picardi G, Schuster R et al. Surface-enhanced and STM-tip-enhanced Raman spectroscopy at metal surfaces[J]. Single Molecules, 3, 285-294(2002).

    [2] Zong C, Xu M X, Xu L J et al. Surface-enhanced Raman spectroscopy for bioanalysis: reliability and challenges[J]. Chemical Reviews, 118, 4946-4980(2018).

    [3] Zhang C, Zhang J, Zhu Y. Slot-waveguide coupled nanostructure enhanced Raman spectroscopy[J]. Acta Optica Sinica, 40, 0313001(2020).

    [4] Xing H J, Yin Z H, Zhang J et al. Quantitative analysis of surface-enhanced Raman scattering based on internal standard method[J]. Laser & Optoelectronics Progress, 57, 030002(2020).

    [5] Ding S Y, Yi J, Li J F et al. Nanostructure-based plasmon-enhanced Raman spectroscopy for surface analysis of materials[J]. Nature Reviews Materials, 1, 16021(2016).

    [6] Pitarke J M, Silkin V M, Chulkov E V et al. Theory of surface plasmons and surface-plasmon polaritons[J]. Reports on Progress in Physics, 70, 1-87(2007).

    [7] Jensen L, Aikens C M, Schatz G C. Electronic structure methods for studying surface-enhanced Raman scattering[J]. Chemical Society Reviews, 37, 1061-1073(2008).

    [8] Persson B N J, Zhao K, Zhang Z Y. Chemical contribution to surface-enhanced Raman scattering[J]. Physical Review Letters, 96, 207401(2006).

    [9] Wen F, Zheng H B, Xue X X et al. Electro magnetically induced transparency-assisted four-wave mixing process in the diamond-type four-level atomic system[J]. Optical Materials, 37, 724-726(2014).

    [10] Polavarapu L. Liz-Marzán L M. Towards low-cost flexible substrates for nanoplasmonic sensing[J]. Physical Chemistry Chemical Physics: PCCP, 15, 5288-5300(2013).

    [11] Liu S G, Yin J, Zheng Y M et al. Flexible SERS substrates-based in situ method for rapid detection of environmental pollutant[J]. Acta Scientiae Circumstantiae, 34, 2157-2162(2014).

    [12] Liu S J, Wang R, Kong X M et al. Fabrication of plasmonic absorbent cotton as SERS substrate for adsorption and detection of harmful ingredients in food[J]. Spectroscopy and Spectral Analysis, 40, 183-184(2020).

    [13] Zhang Y Z, Wang Z Y, Wu L et al. Rapid simultaneous detection of multi-pesticide residues on apple using SERS technique[J]. The Analyst, 139, 5148-5154(2014).

    [14] Liu S J, Jiang C L, Yang B et al. Controlled depositing of silver nanoparticles on flexible film and its application in ultrasensitive detection[J]. RSC Advances, 4, 42358-42363(2014).

    [15] Vo-Dinh T. Hiromoto M Y K, Begun G M, et al. Surface-enhanced Raman spectrometry for trace organic analysis[J]. Analytical Chemistry, 56, 1667-1670(1984).

    [16] Prasanth R, Shankar R, Gupta N et al. Application of carbon nanotubes for resolving issues and challenges on electrochemical capacitors[M]. ∥Handbook of polymer nanocomposites. processing, performance and application. Heidelberg: Springer, 415-445(2015).

    [17] Mondal S, Rana U, Malik S. Facile decoration of polyaniline fiber with Ag nanoparticles for recyclable SERS substrate[J]. ACS Applied Materials & Interfaces, 7, 10457-10465(2015).

    [18] Fleischmann M, Hendra P J. McQuillan A J. Raman spectra of pyridine adsorbed at a silver electrode[J]. Chemical Physics Letters, 26, 163-166(1974).

    [19] Muneer S, Sarfo D K, Ayoko G A et al. Gold-deposited nickel foam as recyclable plasmonic sensor for therapeutic drug monitoring in blood by surface-enhanced Raman spectroscopy[J]. Nanomaterials, 10, 1756(2020).

    [20] Mao P, Chen Q, Wang G H et al. Gas-phase deposited plasmonic nanoparticles supported on 3D-graphene/nickel foam for highly SERS detection[J]. Chinese Journal of Chemical Physics, 32, 200-206(2019).

    [21] Xu F G, Lai H S, Xu H. Gold nanocone arrays directly grown on nickel foam for improved SERS detection of aromatic dyes[J]. Analytical Methods, 10, 3170-3177(2018).

    [22] Liu Y Y, Liu Y, Xing Y et al. Magnetically three-dimensional Au nanoparticles/reduced graphene/nickel foams for Raman trace detection[J]. Sensors and Actuators B: Chemical, 273, 884-890(2018).

    [23] Vu T D, Duy P K, Chung H. Nickel foam-caged Ag-Au bimetallic nanostructure as a highly rugged and durable SERS substrate[J]. Sensors and Actuators B: Chemical, 282, 535-540(2019).

    [24] Li J F, Huang Y F, Ding Y et al. Shell-isolated nanoparticle-enhanced Raman spectroscopy[J]. Nature, 464, 392-395(2010).

    [25] Cottingham K. SERS enters the art scene[J]. Analytical Chemistry, 81, 7128(2009).

    [26] Raman C V, Krishnan K S. A new type of secondary radiation[J]. Nature, 121, 501-502(1928).

    [27] Maier S A. Plasmonics:fundamentals and applications[M]. New York: Springer(2007).

    [28] Jones M R, Osberg K D. MacFarlane R J, et al. Templated techniques for the synthesis and assembly of plasmonic nanostructures[J]. Chemical Reviews, 111, 3736-3827(2011).

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    Hongxian Chen, Ning Sun, Jie Zhang. Nickel Foam Coupled Gold Nanostructures Enhanced Raman Scattering[J]. Acta Optica Sinica, 2022, 42(5): 0524001

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    Paper Information

    Category: Optics at Surfaces

    Received: Jun. 21, 2021

    Accepted: Sep. 10, 2021

    Published Online: Apr. 15, 2022

    The Author Email: Zhang Jie (zhangjie@cqu.edu.cn)

    DOI:10.3788/AOS202242.0524001

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