• Photonic Sensors
  • Vol. 2, Issue 1, 37 (2012)
Yong CHEN and Hai MING*
Author Affiliations
  • Department of Optics & Optical Engineering, Anhui Key Laboratory of Optoelectronic Science and Technology, University of Science and Technology of China, Hefei, Anhui, 230026, China
  • show less
    DOI: 10.1007/s13320-011-0051-2 Cite this Article
    Yong CHEN, Hai MING. Review of Surface Plasmon Resonance and Localized Surface Plasmon Resonance Sensor[J]. Photonic Sensors, 2012, 2(1): 37 Copy Citation Text show less
    References

    [1] B. Liedberg, C. Nylander, and I. Lunstrom, “Surface plasmon resonance for gas detection and biosensing,” Sensors and Actuators, vol. 4, no. 2, pp. 299–304, 1983.

    [2] R. C. Jorgenson and S. S. Yee, “A fiber-optic chemical sensor based on surface plasmon resonance,” Sensors and Actuators B: Chemical, vol. 12, no. 3, pp. 213–220, 1993.

    [3] A. Huber, S. Demartis, and D. Neri, “The use of biosensor technology for the engineering of antibodies and enzymes,” Journal of Molecular Recognition, vol. 12, no. 3, pp. 198–216, 1999.

    [4] M. N. Weiss, R. Srivastava, H. Groger, P. Lo, and S. F. Luo, “A theoretical investigation of environmental monitoring using surface plasmon resonance waveguide sensors,” Sensors and Actuators A: Physical, vol. 51, no. 2–3, pp. 211–217, 1995.

    [5] D. R. Shankaran, K. V. Gobi, and N. Miura, “Recent advancements in surface plasmon resonance immunosensors for detection of small molecules of biomedical, food and environmental interest,” Sensors and Actuators B: Chemical, vol. 121, no. 1, pp. 158–177, 2007.

    [6] S. A. Maier, Plasmonics: Fundamentals and Applications. New York: Springer-Verlag, 2007, pp. 21–34.

    [7] K. Matsubara, S. Kawata, and S. Minami, “Optical chemical sensor based on surface plasmon measurement,” Applied Optics, vol. 27, no. 6, pp. 1160–1163, 1988.

    [8] A. Otto, “Excitation of nonradiative surface plasma waves in silver by the method of frustrated total reflection,” Zeitschrift für Physik A Hadrons and Nuclei, vol. 216, no. 4, pp. 398–410, 1968.

    [9] R. D. Harris and J. S. Wilkinson, “Waveguide surface plasmon resonance sensors,” Sensors and Actuators B: Chemical, vol. 29, no. 1–3, pp. 261–267, 1995.

    [10] R. H. Ritchie, E. T. Arakawa, J. J. Cowan, and R. N. Hamm, “Surface-plasmon resonance effect in grating diffraction,” Phys. Rev. Lett., vol. 21, no. 22, pp. 1530–1533, 1968.

    [11] D. J. Webb, “Research activities arising from the University of Kent,” Photonic Sensors, vol. 1, no. 2, pp. 140–151, 2011.

    [12] C. Y. Chen and E. Burstein, “Giant Raman scattering by molecules at metal-island films,” Phys. Rev. Lett., vol. 45, no. 15, pp. 1287–1291, 1980.

    [13] K. Sokolov, G. Chumanov, and T. M. Cotton “Enhancement of molecular fluorescence near the surface of colloidal metal films,” Anal. Chem., vol. 70, no. 18, pp. 3898–3905, 1998.

    [14] J. Zeng, D. Liang, and Z. X. Cao, “Applications of optical fiber SPR sensor for measuring of temperature and concentration of liquids,” in Proc. SPIE, vol. 5855, pp. 667–670, 2005.

    [15] R. Karlsson and A. F.lt, “Experimental design for kinetic analysis of protein-protein interactions with surface plasmon resonance biosensors,” Journal of Immunological Methods, vol. 200, no. 1–3, pp. 121–133, 1998.

    [16] K. Q. Lin, Y. H. Lu, J. X. Chen, R. S. Zheng, P. Wang, and H. Ming, “Surface plasmon resonance hydrogen sensor based on metallic grating with high sensitivity,” Optics Express, vol. 16, no. 23, pp. 18599–18604, 2008.

    [17] X. L. Wang, P. Wang, C. C. Chen, J. X. Chen, Y. H. Lu, H. Ming, and Q. W. Zhan, “Plasmonic racetrack resonator with high extinction ratio under critical coupling condition,” Journal of Applied Physics, vol. 107, no. 12, pp. 124517-1–124517-4, 2010.

    [18] D. B. Cai, Y. H. Lu, K. Q. Lin, P. Wang, and H. Ming, “Improving the sensitivity of SPR sensors based on gratings by double-dips method (DDM),” Optics Express, vol. 16, no. 19, pp. 14597–14602, 2008.

    [19] L. J. Sherry, S. H. Chang, G. C. Schatz, R. P. Van Duyne, B. J. Wiley, and Y. Xia, “Localized surface plasmon resonance spectroscopy of single silver nanocubes,” Nano. Lett., vol. 5, no. 10, pp. 2034–2038, 2005.

    [20] K. Q. Lin, Y. H. Lu, Z. F. Luo, R. S. Zheng, P. Wang, and H. Ming, “Numerical and experimental investigation of temperature effects on the surface plasmon resonance sensor,” Chinese Optics Letter, vol. 7, no. 5, pp. 428–431, 2009.

    [21] Y. Chen, R. S. Zheng, D. G. Zhang, Y. H. Lu, P. Wang, H. Ming, Z. F. Luo, and Q. Kan, “Bimetallic chip for a surface plasmon resonance sensing instrument,” Applied Optics, vol. 50, no. 3, pp. 387–391, 2011.

    [22] Y. Chen, R. S. Zheng, Y. H. Lu, P. Wang, and H. Ming, “Fiber-optic surface plasmon resonant sensor with low-index anti-oxidation coating,” Chinese Optics Letter, vol. 9, no. 10, pp. 100605–100608, 2011.

    [23] J. Yan, Y. H. Lu, P. Wang, C. Gu, R. S. Zheng, Y. Chen, H. Ming, and Q. W. Zhan, “Improving the sensitivity of fiber-optic SPR sensor via radially polarized beam excitation,” Chinese Optics Letter, vol. 7, no. 10, pp. 909–911, 2009.

    [24] K. Q. Lin, L. M. Wei, D. G. Zhang, R. S. Zheng, P. Wang, Y. H. Lu, and H. Ming, “Temperature effects on prism-based surface plasmon resonance sensor,” Chinese Physics Letters, vol. 24, no. 11, pp. 3081–3084, 2007.

    [25] S. A. Zynio, A. V. Samoylov, E. R. Surovtseva, V. M. Mirsky, and Y. M. Shirshov, “Bimetallic layers increase sensitivity of affinity sensors based on surface plasmon resonance,” Sensors, vol. 2, no. 2, pp. 62–70, 2002.

    [26] X. C. Yuan, B. H. Ong, Y. G. Tan, R. Irawan, and S. C. Tjin, “Sensitivity stability optimized surface plasmon resonance sensing with double metal layers,” J. Opt. A: Pure Appl. Opt., vol. 8, no. 11, pp. 959–963, 2006.

    [27] Y. Y. Tan, X. C. Yuan, B. H. Ong, J. Bu, and Q. Y. Lin, “Two layered metallic film induced surface plasmons for enhanced optical propulsion of microparticles,” Applied Physics Letter, vol. 91, no. 14, pp. 141108-1–141108-3, 2007.

    [28] S. Wang, H. Y. Zhang, L. Wang, Z. J. Duan, and I. Kennedy, “Analysis of sulphonamide residues in edible animal products: a review,” Food Additives and Contaminants, vol. 23, no. 4, pp. 362–384, 2006.

    [29] H. M. Zhou, H. C. OU, H. Jiang, H. F. Jiang, X. P. Wang, and Z. F. Luo, “Surface plasmon resonance for rapid determination of sulfamethoxazole in milk,” Food Science, vol. 31, no. 6, pp. 168–171, 2010.

    [30] A. K. Sharma, R. Jha, and B. D. Gupta, “Fiber-optic sensors based on surface plasmon resonance: a comprehensive review,” IEEE Sensors Journal, vol. 7, no. 8, pp. 1118–1129, 2007.

    [31] W. R. Habel and K. Krebber, “Fiber-optic sensor applications in civil and geotechnical engineering,” Photonic Sensors, vol. 1, no. 3, pp. 268–280, 2011.

    [32] Z. G. Xie, J. Tao, Y. H. Lu , K. Q. Lin, J. Yan, P. Wang, and H. Ming, “Polymer optical fiber SERS sensor with gold nanorods,” Opt. Commun., vol. 282, no. 3, pp. 439–442, 2009.

    [33] Z. G. Xie, Y. H. Lu, H. Wei, J. Yan, P. Wang, and H. Ming, “Broad spectral photonic crystal fiber surface enhanced Raman scattering probe,” Applied Physics B, vol. 95, no. 4, pp. 751–755, 2009.

    [34] Z. G. Xie, P. Wang, Y. H. Lu, K. Q. Lin, J. Yan, and H. Ming, “Photonic crystal fiber SERS sensors based on silver nanoparticle colloid,” Chinese Physics Letters, vol. 25, no. 12, pp. 4473–4475, 2008.

    [35] X. L. Wen, M. F. Yi, D. G. Zhang, P. Wang, Y. H. Lu, and H. Ming, “Tunable plasmonic coupling between silver nano-cubes and silver nano-hole arrays,” Nanotechnology, vol. 22, no. 8, pp. 085203, 2011.

    [36] M. F. Yi, D. G. Zhang, P. Wang, X. J. Jiao, S. Blair, X. L. Wen, Q. Fu, Y. H. Lu, and H. Ming, “Plasmonic interaction between silver nano-cubes and a silver ground plane studied by surface-enhanced Raman scattering,” Plasmonics, vol. 6, no. 3, pp. 515–519, 2011.

    [37] M. F. Yi, D. G. Zhang, X. L. Wen, Q. Fu, P. Wang, Y. H. Lu, and H. Ming, “Fluorescence enhancement caused by plasmonics coupling between silver nano-cubes and silver film,” Plasmonics, vol. 6, no. 12, pp. 213–217, 2011.

    [38] T. K. Sau and C. J. Murphy, “Seeded high yield synthesis of short au nanorods in aqueous solution,” Langmuir, vol. 20, no. 15, pp. 6414–6420, 2004.

    [39] F. Jimenez, J. Arrue, G. Aldabaldetreku, G. Durana, J. Zubia, O. Ziemann, and C. A. Bunge, “Analysis ofa plastic optical fiber-based displacement sensor,” Applied Optics, vol. 46, no. 25, pp. 6256–6262, 2007.

    [40] C. M. Tay, K. M. Tan, S. C. Tjin, C. C. Chan, and H. Rahardjo, “Humidity sensing using plastic optical fibers,” Microwave and Optical Technology Letters, vol. 43, no. 5, pp. 387–390, 2004.

    [41] F. Baldini, P. Bechi, S. Bracci, F. Cosi, and F. Pucciani, “In vivo optical-fiber pH sensor for gastro-oesophageal measurements,” Sensors and Actuators B: Chemical, vol 29, no. 1–3, pp. 164–168, 1995.

    [42] D. F. Merchant, P. J. Scully, and N. F. Schmitt, “Chemical tapering of polymer optical fiber,” Sensors and Actuators A: Physical, vol 76, no. 1–3, pp. 365–371, 1999.

    [43] E. Polwart, R. L. Keir, C. M. Davidson, W. E. Smith, and D. A. Sadler, “Novel SERS-active optical fibers prepared by the immobilization of silver colloidal particles,” Applied Spectroscopy, vol. 54, no. 4, pp. 522–527, 2000.

    [44] P. K. Jain and M. A. El-Sayed, “Plasmonic coupling in noble metal nanostructures,” Chem. Phys. Lett., vol. 487, no. 4–6, pp. 153–164, 2010.

    [45] H. J. Chen, Z. H. Sun, W. H. Ni, K. C. Woo, H. Q. Lin, L. D. Sun, C. H. Yan, and J. F. Wang, “Plasmon coupling in clusters composed of two-dimensionally ordered gold nanocubes,” Small, vol. 5, no. 18, pp. 2111–2119, 2009.

    [46] H. Masuda and K. Fukuda, “Ordered metal nanohole arrays made by a two-step replication of honeycomb structures of anodic alumina,” Science, vol. 268, no. 5216, pp. 1466–1468, 1995.

    [47] S. E. Skrabalak, L. Au, X. Li, and Y. Xia, “Facile synthesis of Ag nanocubes and Au nanocages,” Nat. Protocols, vol. 2, no. 9, pp. 2182–2190, 2007.

    [48] A. R. Siekkinen, J. M. McLellan, J. Chen, and Y. Xia, “Rapid synthesis of small silver nanocubes by mediating polyol reduction with a trace amount of sodium sul.de or sodium hydrosul.de,” Chem. Phys. Lett., vol. 432, no. 4–6, pp. 491–496, 2006.

    [49] R. P. Van Duyne, J. C. Hulteen, and D. A Treichel, “Atomic force microscopy and surface-enhanced Raman spectroscopy. I. Ag island .lms and Ag .lm over polymer nanosphere surfaces supported on glass,” J. Chem. Phys., vol. 99, no. 3, pp. 2101–2115, 1993.

    CLP Journals

    [1] Francesco Arcadio, Luigi Zeni, Domenico Montemurro, Caterina Eramo, Stefania Di Ronza, Chiara Perri, Girolamo D’Agostino, Guido Chiaretti, Giovanni Porto, Nunzio Cennamo. Biochemical sensing exploiting plasmonic sensors based on gold nanogratings and polymer optical fibers[J]. Photonics Research, 2021, 9(7): 1397

    [2] ZHANG Pei-pei, YAO Jian-quan, CUI Hai-xia, LU Ying. A surface plasmon resonance sensor based on a multicore photonic crystal fiber[J]. Optoelectronics Letters, 2013, 9(5): 342

    Yong CHEN, Hai MING. Review of Surface Plasmon Resonance and Localized Surface Plasmon Resonance Sensor[J]. Photonic Sensors, 2012, 2(1): 37
    Download Citation