• Photonics Research
  • Vol. 6, Issue 2, 77 (2018)
Fengyou Yang1、2、†, Haoran Zhang1、2、†, Huimin Feng1、2、†, Jianjie Dong1, Chuang Wang1、2, and Qian Liu1、3、*
Author Affiliations
  • 1CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing 100190, China
  • 2University of Chinese Academy of Sciences, Beijing 100049, China
  • 3MOE Key Laboratory of Weak-Light Nonlinear Photonics, TEDA Applied Physics Institute, School of Physics, Nankai University, Tianjin 300457, China
  • show less
    DOI: 10.1364/PRJ.6.000077 Cite this Article Set citation alerts
    Fengyou Yang, Haoran Zhang, Huimin Feng, Jianjie Dong, Chuang Wang, Qian Liu. Bionic SERS chip with super-hydrophobic and plasmonic micro/nano dual structure[J]. Photonics Research, 2018, 6(2): 77 Copy Citation Text show less
    References

    [1] S. Y. Chou, C. C. Yu, Y. T. Yen, K. T. Lin, H. L. Chen, W. F. Su. Romantic story or Raman scattering? Rose petals as ecofriendly, low-cost substrates for ultrasensitive surface-enhanced Raman scattering. Anal. Chem., 87, 6017-6024(2015).

    [2] S. Gwo, C. Y. Wang, H. Y. Chen, M. H. Lin, L. Sun, X. Li, W. L. Chen, Y. M. Chang, H. Ahn. Plasmonic metasurfaces for nonlinear optics and quantitative SERS. ACS Photon., 3, 1371-1384(2016).

    [3] J. Chen, G. Qin, W. Shen, Y. Li, B. Das. Fabrication of long-range ordered, broccoli-like SERS arrays and application in detecting endocrine disrupting chemicals. J. Mater. Chem. C, 3, 1309-1318(2015).

    [4] L. A. Lane, X. Qian, S. Nie. SERS nanoparticles in medicine: from label-free detection to spectroscopic tagging. Chem. Rev., 115, 10489-10529(2015).

    [5] H. Y. Hsueh, H. Y. Chen, Y. C. Ling, W. S. Huang, Y. C. Hung, S. Gwo, R. M. Ho. A polymer-based SERS-active substrate with gyroid-structured gold multibranches. J. Mater. Chem. C, 2, 4667-4675(2014).

    [6] X. X. Han, W. Ji, B. Zhao, Y. Ozaki. Semiconductor-enhanced Raman scattering: active nanomaterials and applications. Nanoscale, 9, 4847-4861(2017).

    [7] K. Kneipp, Y. Wang, H. Kneipp, L. T. Perelman, I. Itzkan, R. R. Dasari, M. S. Feld. Single molecule detection using surface-enhanced Raman scattering (SERS). Phys. Rev. Lett., 78, 1667-1670(1997).

    [8] H. Tang, G. Meng, Z. Li, C. Zhu, Z. Huang, Z. Wang, F. Li. Hexagonally arranged arrays of urchin-like Ag hemispheres decorated with Ag nanoparticles for surface-enhanced Raman scattering substrates. Nano Res., 8, 2261-2270(2015).

    [9] C. Zhu, G. Meng, Q. Huang, X. Wang, Y. Qian, X. Hu, H. Tang, N. Wu. ZnO-nanotaper array sacrificial templated synthesis of noble-metal building-block assembled nanotube arrays as 3D SERS-substrates. Nano Res., 8, 957-966(2015).

    [10] W. Q. Li, G. Wang, X. N. Zhang, H. P. Geng, J. L. Shen, L. S. Wang, J. Zhao, L. F. Xu, L. J. Zhang, Y. Q. Wu, R. Z. Tai, G. Chen. Geometrical and morphological optimizations of plasmonic nanoarrays for high-performance SERS detection. Nanoscale, 7, 15487-15494(2015).

    [11] J. F. Li, Y. F. Huang, Y. Ding, Z. L. Yang, S. B. Li, X. S. Zhou, F. R. Fan, W. Zhang, Z. Y. Zhou, D. Y. Wu, B. Ren, Z. L. Wang, Z. Q. Tian. Shell-isolated nanoparticle-enhanced Raman spectroscopy. Nature, 464, 392-395(2010).

    [12] Y. S. Yamamoto, K. Hasegawa, Y. Hasegawa, N. Takahashi, Y. Kitahama, S. Fukuoka, N. Murase, Y. Baba, Y. Ozaki, T. Itoh. Direct conversion of silver complexes to nanoscale hexagonal columns on a copper alloy for plasmonic applications. Phys. Chem. Chem. Phys., 15, 14611-14615(2013).

    [13] B.-B. Xu, Y.-L. Zhang, W.-Y. Zhang, X.-Q. Liu, J.-N. Wang, X.-L. Zhang, D.-D. Zhang, H.-B. Jiang, R. Zhang, H.-B. Sun. Silver-coated rose petal: green, facile, low-cost and sustainable fabrication of a SERS substrate with unique superhydrophobicity and high efficiency. Adv. Opt. Mater., 1, 56-60(2013).

    [14] L. Xu, W. Yan, W. Ma, H. Kuang, X. Wu, L. Liu, Y. Zhao, L. Wang, C. Xu. SERS encoded silver pyramids for attomolar detection of multiplexed disease biomarkers. Adv. Mater., 27, 1706-1711(2015).

    [15] Z. Mu, X. Zhao, Z. Xie, Y. Zhao, Q. Zhong, L. Bo, Z. Gu. In situ synthesis of gold nanoparticles (AuNPs) in butterfly wings for surface enhanced Raman spectroscopy (SERS). J. Mater. Chem. B, 1, 1607-1613(2013).

    [16] J. A. Huang, Y. L. Zhang, Y. Zhao, X. L. Zhang, M. L. Sun, W. Zhang. Superhydrophobic SERS chip based on a Ag coated natural taro-leaf. Nanoscale, 8, 11487-11493(2016).

    [17] C. T. Chapman, J. T. Paci, W. K. Lee, C. J. Engel, T. W. Odom, G. C. Schatz. Interfacial effects on nanoscale wrinkling in gold-covered polystyrene. ACS Appl. Mater. Interface, 8, 24339-24344(2016).

    [18] X. Yang, Y. Zhao, J. Xie, X. Han, J. Wang, C. Zong, H. Ji, J. Zhao, S. Jiang, Y. Cao, C. Lu. Bioinspired fabrication of free-standing conducting films with hierarchical surface wrinkling patterns. ACS Nano, 10, 3801-3808(2016).

    [19] W. K. Lee, J. Kang, K. S. Chen, C. J. Engel, W. B. Jung, D. Rhee, M. C. Hersam, T. W. Odom. Multiscale, hierarchical patterning of graphene by conformal wrinkling. Nano Lett., 16, 7121-7127(2016).

    [20] C. F. Guo, S. Cao, J. Zhang, H. Tang, S. Guo, Y. Tian, Q. Liu. Topotactic transformations of superstructures: from thin films to two-dimensional networks to nested two-dimensional networks. J. Am. Chem. Soc., 133, 8211-8215(2011).

    [21] Y. Tian, C. F. Guo, S. Guo, T. Yu, Q. Liu. Bivariate-continuous-tunable interface memristor based on Bi2S3 nested nano-networks. Nano Res., 7, 953-962(2014).

    [22] C. F. Guo, J. Zhang, M. Wang, Y. Tian, Q. Liu. A strategy to prepare wafer scale bismuth compound superstructures. Small, 9, 2394-2398(2013).

    [23] E. D. Palik. Handbook of Optical Constants of Solids(1985).

    [24] W. K. Lee, W. B. Jung, S. R. Nagel, T. W. Odom. Stretchable superhydrophobicity from monolithic, three-dimensional hierarchical wrinkles. Nano Lett., 16, 3774-3779(2016).

    [25] R. Wang, S. Bai. Wettability of laser micro-circle-dimpled SiC surfaces. Appl. Surf. Sci., 346, 107-110(2015).

    [26] D. Murakami, H. Jinnai, A. Takahara. Wetting transition from the Cassie-Baxter state to the Wenzel state on textured polymer surfaces. Langmuir, 30, 2061-2067(2014).

    [27] T. Itoh, Y. S. Yamamoto, Y. Kitahama, J. Balachandran. One-dimensional plasmonic hotspots located between silver nanowire dimers evaluated by surface-enhanced resonance Raman scattering. Phys. Rev. B, 95, 115441(2017).

    [28] H. Xu, J. Aizpurua, M. Käll, P. Apell. Electromagnetic contributions to single-molecule sensitivity in surface-enhanced Raman scattering. Phys. Rev. E, 62, 4318-4324(2000).

    [29] C. E. Talley, J. B. Jackson, C. Oubre, N. K. Grady, C. W. Hollars, S. M. Lane, T. R. Huser, P. Nordlander, N. J. Halas. Surface-enhanced Raman scattering from individual Au nanoparticles and nanoparticle dimer substrates. Nano Lett., 5, 1569-1574(2005).

    [30] W. Zhu, R. Esteban, A. G. Borisov, J. J. Baumberg, P. Nordlander, H. J. Lezec, J. Aizpurua, K. B. Crozier. Quantum mechanical effects in plasmonic structures with subnanometre gaps. Nat. Commun., 7, 11495(2016).

    CLP Journals

    [1] Min Liu, Wending Zhang, Fanfan Lu, Tianyang Xue, Xin Li, Lu Zhang, Dong Mao, Ligang Huang, Feng Gao, Ting Mei, Jianlin Zhao. Plasmonic tip internally excited via an azimuthal vector beam for surface enhanced Raman spectroscopy[J]. Photonics Research, 2019, 7(5): 526

    Fengyou Yang, Haoran Zhang, Huimin Feng, Jianjie Dong, Chuang Wang, Qian Liu. Bionic SERS chip with super-hydrophobic and plasmonic micro/nano dual structure[J]. Photonics Research, 2018, 6(2): 77
    Download Citation