Semiconductor
Physics, Quantum Electronics & Optoelectronics. 2014. V. 17, N
4. P. 368-373.
References 1. C. Hahnefeld, S. Drewianka, F.W. Herberg, Determination of kinetic data using surface plasmon resonance biosensors, Chap. 19 in: Molecular Diagnosis of Infectious Diseases, Eds. J. Decler and U. Reischl, p. 299-320, Humana Press, series Methods in Molecular Medicine, 94 (2004).2. N.J. de Mol, M.J.E. Fisher, Kinetic and thermodynamic analysis of ligand-receptor interactions: SPR applications in drug development, Chap. 5 in: Handbook of Surface Plasmon Resonance, Eds. R.B.M. Schasfoort and A.J Tudos, p. 123-172, RSC Publishing (2008). https://doi.org/10.1039/9781847558220-00123 3. R.J. Green, R.A. Frazier, K.M. Shakeshe, M.C. Davies, C.J. Roberts, S.J.B. Tendler, Surface plasmon resonance analysis of dynamic biological interactions with biomaterials . Biomaterials, 21 p. 1823-1835 (2000). https://doi.org/10.1016/S0142-9612(00)00077-6 4. N. Granqvist, A. Hanning, L. Eng, J. Tuppurainen, T. Viitala, Label-enhanced surface plasmon resonance: A new concept for improved performance in optical biosensor analysis . Sensors, 13, p. 15348-15363 (2013). https://doi.org/10.3390/s131115348 5. E. Hutter, J.H. Fendler, D. Roy, Surface plasmon resonance studies of gold and silver nanoparticles linked to gold and silver substrates by 2-aminoethanethiol and 1,6-hexanedithiol . J. Phys. Chem. B, 105(45), p. 11159-11168 (2001). https://doi.org/10.1021/jp011424y 6. Zhong-Shu Chang, Chi-Yuan Chang, Rong-Seng Chang, Surface plasmon resonance design of chip-type sensor with nanoparticles . Intern. J. Innovative Computing, Information and Control, 9(10) p. 3955-3964 (2013). 7. K.M. Byun, N.-H. Kim, J.W. Leem, J.S. Yu, Enhanced surface plasmon resonance detection using porous ITO-gold hybrid substrates . Appl. Phys. B, 107, p. 803-808 (2012). https://doi.org/10.1007/s00340-012-4998-5 8. W. Knoll, A. Kasry, Jing Liu, T. Neumann, Lifang Niu, H. Park, H. Paulsen, R. Robelek, Danfeng Yao and Fang Yu, Surface plasmon fluorescence techniques for bioaffinity studies, Chap. 9 in: Handbook of Surface Plasmon Resonance, Eds. R.B.M. Schasfoort and A.J. Tudos, p. 275-312, RSC Publishing (2008). https://doi.org/10.1039/9781847558220-00275 9. A.J. Thiel, A.G. Frutos, C.E. Jordan, R.M. Corn, L.M. Smith, In situ surface plasmon resonance imaging detection of DNA hybridization to oligonucleotide arrays on gold surfaces . Anal. Chem. 69, p. 4948-4956 (1997)/ https://doi.org/10.1021/ac9708001 10. C.T. Campbell, G. Kim, SPR microscopy and its applications to high-throughput analyses of biomolecular binding events and their kinetics . Biomaterials, 28 p. 2380-2392 (2007). https://doi.org/10.1016/j.biomaterials.2007.01.047 11. E. Fu, T. Chinowsky, K. Nelson, P. Yager, SPR imaging for clinical diagnostics, Chap. 10 in: Handbook of Surface Plasmon Resonance, Eds. R.B.M. Schasfoort and A.J. Tudos, p. 313-332, RSC Publishing (2008). https://doi.org/10.1039/9781847558220-00313 12. L. Malic, Bo Cui, M. Tabrizian, T. Veres, Nanoimprinted plastic substrates for enhanced surface plasmon resonance imaging detection . Opt. Exp. 17(22), p. 20386-20392 (2009). https://doi.org/10.1364/OE.17.020386 13. B. Rothenhausle, W. Knoll, Surface-plasmon microscopy . Nature, 332, p. 615-617 (1988). https://doi.org/10.1038/332615a0 14. A. Zybin, Y.A. Kuritsyn, E.L. Gurevich, V.V. Temchura, K. Uberla, K. Niemax, Surface plasmon resonance for detection of dielectric nanoparticles and viruses . Plasmonics, 5, p. 31-35 (2010). https://doi.org/10.1007/s11468-009-9111-5 15. E.L. Gurevich, V.V. Temchura, K. Uberla, A. Zybin, Analytical features of particle counting sensor based on plasmon assisted microscopy of nano objects . Sensors and Actuators B, 160, p. 1210-1215 (2011). https://doi.org/10.1016/j.snb.2011.09.050 16. V. Shpacovitch, Application of surface plasmon resonance (SPR) for the detection of single viruses and single biological nano-objects . J. Bacteriol. Parasitol. 3(7), e110, 3 p. (2012). 17. D.C. Prieve, F. Luo, F. Lanni. Brownian motion of a hydrosol particle in a colloidal force field . Faraday Discussions of the Chemical Society, 83, p. 297-307 (1987). https://doi.org/10.1039/dc9878300297 18. H. Raether, Surface Plasmons on Smooth and Rough Surfaces and on Gratings. Springer Tracts in Modern Physics, Vol. 111, Springer Berlin, 1988. 19. A. Kausaite, M. van Dijk, J. Castrop, J.P. Baltrus, A. Ramanaviciene, J. Acaite, A. Ramanavicius, Surface plasmon resonance label-free monitoring of antibody antigen interactions in real time . Biochemistry and molecular biology education, 35(1), p. 57-63 (2007). https://doi.org/10.1002/bmb.22 20. J.A. Lofgren, S. Dhandapani, J.J. Pennucci, C.M. Abbott, D.T. Mytych, A. Kaliyaperumal, S.J. Swanson, M.C. Mullenix, Comparing ELISA and surface plasmon resonance for assessing clinical immunogenicity of panitumumab . J. Immunol. 178, p. 7467-7472 (2007). https://doi.org/10.4049/jimmunol.178.11.7467 21. T. Candresse, H. Lot, S. German-Retana, R. Krause-Sakate, J. Thomas, S. Souche, T. Delaunay, M. Lanneau, O. Le Gall, Analysis of the serological variability of Lettuce mosaic virus using monoclonal antibodies and surface plasmon resonance technology . J. Gen. Virol. 88, p. 2605-2610 (2007). https://doi.org/10.1099/vir.0.82980-0 22. P. Singh, T. Onodera, Y. Mizuta, K. Matsumoto, N. Miura, K. Toko, Novel DNP-KLH protein conjugate surface for sensitive detection of TNT on SPR immunosensor . Sensor. Mater. 19, p. 261-273 (2007). 23. S.A. Maier, Plasmonics: Fundamentals and Applications. Springer Science+Business Media LLC (2007). 24. Heon-Jin Choi, Vapor-Liquid-Solid growth of semiconductor nanowires, Chap. 14 in: Semiconductor Nanostructures for Optoelectronic Devices, Ed. Gyu-Chul Yi, p. 1-36, Springer-Verlag Berlin Heidelberg (2012). https://doi.org/10.1007/978-3-642-22480-5 25. "Plasmon" line of Surface Plasmon Resonance spectrometers from Surface Plasmon Resonance Spectrometry Group of ISP NASU, http://www. plasmon.org.ua/PRODUCTS.HTM 26. R. Arimoto, J.M. Murrayt, Orientation-dependent visibility of long thin objects in polarization-based microscopy . Biophys. J. 70(6), p. 2969-2980 (1996). https://doi.org/10.1016/S0006-3495(96)79867-3 27. C.F. Bohren, D.R. Huffman, Angular dependence of scattering, Chap. 13 in: Absorption and Scattering of Light by Small Particles, p. 321-429. John Wiley, New York, 1998. 28. P. Tallury, A. Malhotra, L.M. Byrne., S. Santra, Nanobioimaging and sensing of infectious diseases . Adv. Drug Delivery Rev. 62, p. 424-437 (2010). https://doi.org/10.1016/j.addr.2009.11.014 29. A.A. Yanik, Min Huang, O. Kamohara, A. Artar, T.W. Geisbert, J.H. Connor, H. Altug, An optofluidic nanoplasmonic biosensor for direct detection of live viruses from biological media . Nano Lett. 10(12), p. 4962-4969 (2010). https://doi.org/10.1021/nl103025u 30. B. Barlen, S.D. Mazumdar, O. Lezrich, P. Kampfer, M. Keusgen, Detection of Salmonella by surface plasmon resonance . Sensors, 7, p. 1427-1446 (2007). https://doi.org/10.3390/s7081427 31. Jing Xu, Jia-yu Wan, Song-tao Yang, Shou-feng Zhang, Na Xu, Nan Li, Ji-ping Li, Hai-ying Wang, Xue Bai, Wen-sen Liu, A surface plasmon resonance biosensor for direct detection of the rabies virus . Acta Veterinaria Brno, 81, p. 107-111(2012). https://doi.org/10.2754/avb201281020107 |