박사

광 바이오센서를 위한 나노 광학 기반의 광집적소자에 관한 연구

김홍승 2015년
논문상세정보
    • 저자 김홍승
    • 기타서명 A study on photonic integrated devices using nano-photonics for optical biosensors
    • 형태사항 26 cm: ix, 180 p.: 삽화
    • 일반주기 지도교수: 최영완, 참고문헌 수록
    • 학위논문사항 2015. 2, 중앙대학교 대학원, 전자전기공학부 전파광파공학전공, 학위논문(박사)-
    • 발행지 서울
    • 언어 eng
    • 출판년 2015
    • 발행사항 中央大學校 大學院
    유사주제 논문( 0)

' 광 바이오센서를 위한 나노 광학 기반의 광집적소자에 관한 연구' 의 참고문헌

  • de Silva, A.P.; Gunaratne, H.Q.; Gunnlaugsson, T.; Huxley, A.J.; McCoy, C.P.;Rademacher, J.T.; Rice, T.E. Signaling Recognition Events with Fluorescent Sensors and19Switches. Chem. Rev. 1997, 97, 1515-1566.
  • Zhou C, Pivarnik P, Rand A G, Letcher SV. Acoustic standing-wave enhancement of afiber-optic Salmonella biosensor. Biosensors and Bioelectronics 1998; 13(5) 495?500.
  • Zhechao Wang and Daoxin Dai, J. Opt. Soc. Am. B 25, 5 (2008)
  • Zargoosh K,Chaichi MJ,Shamsipur M,Hossienkhani S,Asghari S,Qandalee M. HighlySensitive Glucose Biosensor Based On The Effective Immobilization Of GlucoseOxidase/Carbon-Nanotube And Gold Nanoparticle In Nafion Film AndPeroxyoxalateChemiluminescence Reaction of a New Fluorophore. Talanta 2012; 9337-43.
  • Z.-Y. Li, I. El-Kady, K. M. Ho, S.Y. Lin, J.G. Fleming, Photonic Band Gap Effect inLayerBy-Layer Metallic Photonic Crystals, Journal of Applied Physics, 93, 38, 2003.
  • Yanwu Zhang, Xiang Wu, Zian He, Liying Liu, and Lei Xu, J. Opt. A:Pure Appl.Opt. 11, 10, 105401 (2009)
  • Y. Shani, R. Alferness, T. Koch, U. Koren, M. Oron, B. I. Miller, and M. G.Young, Applied Physics Letters 59, 11 (1991)
  • Y. Barbarin, R. A. J. M. Bente, C. Marquet, E. J. S. Leclere, J. J. M. Binsma, M. K.Smit, Measurement of reflectivity of butt-joint active-passive interfaces in integratedextended cavity lasers, IEEE Photonics Technology Letters, 17, 11, 2265-2267, 2005.
  • Xuejin Yan, M. L. Masanovic, E. J. Skogen, Z. Hu, D. J. Blumenthal, L. A. Coldren, Optical Mode Converter Integration With InP-InGaAsP Active and PassiveWaveguides Using a Single Regrowth Process, IEEE phot. tech. let., 14, 9, 2002.
  • Xiaoling Jia, Shengqin Luo, and Xinhong Cheng, Opt. Commun. 281, 5, 1003-1007 (2008)
  • World Cancer Report 2014. World Health Organization. 2014. pp. Chapter 5.12. ISBN9283204298.
  • W. Yuan, K. Kojima, B. Wang, T. Koike-Akino, K. Parsons, S. Nishikawa, and E.Yagyu, Optics Express 20, 9 (2012)
  • W. L. Barnes, A. Dereux, T. W. Ebbesen, Surface plasmon subwavelength optics, Nature, 424, 824, 2003.
  • V.M. Menon, F. Xia, S. R. Forrest, Photonic integration using asymmetric twinwaveguide(ATG) technology: part II-devices, IEEE Selected Topics in QuantumElectronics, 11, 1, 30-42, 2005.
  • V. Zamora, A. Diez, M. V. Andres, and B. Gimeno, Refractometric sensor based onwhispering-gallery modes of thin capillaries, Opt. Express 15, 12011-12016, 2007.
  • V. R. Dantham, S. Holler, V. Kolchenko, Z. Wan, and S. Arnold, "Taking whisperinggallery-mode single virus detection and sizing to the limit," Appl. Phys. Lett. 101,043704, 2012.141
  • Urgun-Demirtas M, Stark B, Pagilla K. Use Of Genetically Engineered Microorganisms(Gems) For The Bioremediation Of Contaminants. Critical Reviews in Biotechnolog 2006;26(3) 145? 164.
  • U. Fano, The theory of anomalous diffraction gratings and of quasistationary waveson metallic surfaces, J. Opt. Soc. Am., 31, 231, 1941.
  • Terai T, Nagano T. Fluorescent Probes for Bioimaging Applications. Current Opinionin Chemical Biology 2008; 12 515-521.
  • T. Yabu, M. Geshiro, T. Kitamura, K. Nishida, and S. Sawa, IEEE J. QuantumElectron. 38, 1, 37-46 (2002)
  • T. Van Caenegem. D. Van Thourhout, M. Galarza, S. Verstuyft, I. Moerman, P. VanDaele, R. Baets, P. Demeester, C. G. P. Herben, X. J. M. Leijten, M. K. Smit, Monolithically integrated multi-wavelength laser by selective area growth with metalorganic vapour phase epitaxy, Electronics Letters, 37, 5, 296-298, 2001.
  • T. Van Caenegem, I. Moerman, P. Demeester, Selective area growth on planarmasked InP substrates by metal organic vapour phase epitaxy (MOVPE), Progress inCrystal Growth and Characterization of Materials, 35, 2-4, 263-288, 1997.
  • T. Ling and L. J. Guo, A unique resonance mode observed in a prism-coupled microtuberesonator sensor with superior index sensitivity, Opt. Express 15, 17424-17432,2007.
  • T. Kominato, Y. Ohmori, N. Takato, H. Okazaki, M. Yasu, Ring resonatorscomposed of GeO2-doped silica waveguides, IEEE J. of Lightwave Tech., 10, 12,1781-1788, 1992.
  • Sudeep Mandal and David Erickson, Nanoscale optofluidic sensor arrays, OpticsExpress, 16(3), (2008)
  • Shulga AA, Soldatkin AP, Elskaya AV, Dzyadevich SV, Patskovsky SV, Strikha VI.Thin-Film Conductometric Biosensors for Glucose and Urea Determination. Biosensors andBioelectronics 1994; 9 217?223.
  • Shi J, Cha TG, Claussen JC, Diggs AR, Choi JH, Porterfield DM. MicrobiosensorsBased on DNA Modified Single-Walled Carbon Nanotube and Pt BlackNanocomposites.Analyst 2010; 136 4916-4924.
  • Senichi Suzuki, Kazuhiro Oda, Yoshinori Hibino, Integrated-optic double-ringresonator with wide free spectral range of 100 GHz, IEEE J. of Lightwave Tech., 13,8, 1766-1771, 1995..60
  • Schneider BH, Edwards JG, Hartman NF. Hartman Interferometer: Versatile IntegratedOptic Sensor For Label-Free, Real-Time Quantification Of Nucleic Acids, Proteins, AndPathogens. Clinical Chemistry 1997; 43(9) 1757-1763.
  • Scarano S, Scuffi C, Mascini M, Minunni M. Surface Plasmon Resonance Imaging forAffinity-Based Biosensors, in P. Malcovati (eds), Sensors and Microsystems: AISEMproceedings 2009, Lecture Notes in Electrical Engineering. 2010; 54(part 5). p425-428.
  • S.A. Maier, Plasmonics: Fundamentals and Applications, Springer, 2007.
  • S. Nagai, G. Morishima, H. Inayoshi, and K. Utaka, IEEE J. Lightwave Technol.20, 4, 675-678 (2002)
  • S. McDougall, O. Kowalski, C. Hamilton, F. Camacho, B. Qiu, M. Ke, R. De La Rue,A. Bryce, J. Marsh, Monolithic integration via a universal damage enhancedquantum-well intermixing technique, IEEE J. Sel. Topics Quantum Electron., 4, 4,636?646, 1998.
  • S. L. Tsao, H. C. Guo, and C. W. Tsai, Opt. Commun. 232, 371-379 (2004)
  • S. I. Shopova, R. Rajmangal, S. Holler, and S. Arnold, Plasmonic enhancement of awhispering-gallery-mode biosensor for single nanoparticle detection, Appl. Phys. Lett.98, 243104, 2011.
  • S. Charbonneau, E. Kotels, P. Poole, J. He, G. Aers, J. Haysom, M. Buchanan, Y.Feng, A. Delage, F. Yang, M. Davies, R. Goldberg, P. Piva, I. Mitchell, Photonicintegrated circuits fabricated using ion implantation, IEEE J. Sel. Topics QuantumElectron., 4, 4, 772?793, 1998.
  • S, Kumai, T. Ishikawa, A. Okazaki, K. Utaka, H. Amanai, K. Kurihara and K.Shimoyama, IEICE Electronics Express 2, 23, 578-582 (2005)
  • Reed B, Blazeck J, Alper H. Evolution of an Alkane-Inducible Biosensor for IncreasedResponsiveness to Short-Chain Alkanes. Journal of Biotechnology 2012; 158(3) 75-79.
  • R.W. Wood, On a Remarkable Case of Uneven Distribution of Light in a DiffractionGrating pectrum, Philosophical Magazine 4, 396-403, 1902.
  • R. W. Boyd and J. E. Heebner, Sensitive disk resonator photonic biosensor, Appl.Opt. 40, 5742-5747, 2001.
  • R. C. Alferness, IEEE J. Quantum Electron. 17, 6 (1981)
  • Piek JM, van Diest PJ, Verheijen RH (2008). "Ovarian carcinogenesis: an alternativehypothesis". Adv. Exp. Med. Biol. Advances in Experimental Medicine and Biology 622:79?87. doi:10.1007/978-0-387-68969-2_7. ISBN 978-0-387-68966-1. PMID18546620.Closed access
  • Petryayeva E, Krull UJ. Localized Surface Plasmon Resonance: Nanostructures,Bioassays AndBiosensing?A review. AnalyticaChimicaActa 2011; 706 8? 24.20
  • Pavan S,Berti F. Short Peptides As Biosensor Transducers, Analytical AndBioanalytical Chemistry 2012; 402(10) 3055-3070.
  • Park K, Xu S, Liu Y, Hwang GT, Kang SJL, Wang ZL, Lee KJ. Piezoelectric BaTiO3Thin Film Nanogenerator on Plastic Substrates. Nano Letters, 2010; 10 4939?4943.
  • P. R. Berman, "Goos-Hanchen shift in negatively refractive media," Physical ReviewE 66, 67603 (2002).
  • P. Lecaruyer, E. Maillart, M. Canva, J. Rolland, Generalization of the Rouard methodto an absorbing thin-film stack and application to surface plasmon resonance, Appl.Opt., 45, 33, 8419-8423, 2006.
  • P. B. Johnson and R. W. Christy, Optical constants of the noble metals, Phys Rev. B.,6, 12, 4370-4379, 1972.
  • Ovarian Epithelial Cancer Treatment (PDQ ). NCI. 2014-05-12. Retrieved 1 July2014.
  • Ovarian Cancer Prevention (PDQ ). NCI. December 6, 2013. Retrieved 1 July 2014.
  • Ovarian Cancer Prevention (PDQ ). NCI. 2014-06-20. Retrieved 1 July 2014.
  • Opitz N, Lubbers DW.New Fast-Responding Optical Method to Measure PCO2 InGases and Solutions, PflugersArchiv-European Journal of Physiology 1975;355(S)
  • N. W. Ashcroft, N. D. Mermin, Solid State Physics, Brooks Cole, 1976.
  • N. M. Hanumegowda, C. J. Stica, B. C. Patel, I. White, and X. Fan, Refractometricsensors based on microsphere resonators, Appl. Phys. Lett. 87, 201107, 2005.
  • Moyer, VA; U.S. Preventive Services Task, Force (Dec 18, 2012). "Screening forovarian cancer: U.S. Preventive Services Task Force reaffirmation recommendationstatement.". Annals of internal medicine 157 (12): 900?4. doi:10.7326/0003-4819-157-11-201212040-00539. PMID 22964825.
  • Malhotra BD, Chaubey A, Singh SP. Prospects of Conducting Polymers InBiosensors.AnalyticaChimicaActa 2006; 578(1) 59?74.
  • M.R. Gokhale, P. V. Studenkov, J. Ueng-McHale, J. Thomson, J. Yao, J. Van Saders, Uncooled, 10Gb/s 1310 nm electroabsorption modulated laser, OFC 2003, PD42-P1-3, 2003.
  • M. Takenaka, and Y. Nakano, IEEE Photon. Technol. Lett. 15, 8, 1035-1037(2003)78
  • M. Sysak, J. Raring, J. Barton, M. Dummer, D. Blumenthal, L. Coldren, A singleregrowth integration platform for photonic circuits incorporating tunable SGDBRlasers and quantum-well EAMs, IEEE Photonics Technology Letters, 18, 15, 1630-1632, 2006.
  • M. Sumetsky, R. S. Windeler, Y. Dulashko, and X. Fan, Optical liquid ring resonatorsensor, Opt. Express 15, 14376-14381, 2007.
  • M. R. Watts and H. A. Haus, Optics Letters 30, 2 (2005)
  • M. Peccianti, C. Conti, G. Assanto, A. D. Luca, and U. Umeton, "All-opticalswitching and logic gating with spatial solitons in liquid crystals," Appl. Phys. Lett. 81, 18,3335-3337 (2002)
  • M. N. Sysak, Monolithically Integrated Wavelength Converters Using a DualQuantum Well Integration Platform, Ph.D. dissertation, University of CaliforniaSanta Barbara, 2005.
  • M. Merano, A. Aiello, G. W. t Hooft, M. P. van Exter, E. R. Eliel and J. P. Woerdman, Observation of Goos-Hanchen shifts in metallic reflection, Optics Express, 15,15928-15934 (2007).
  • M. K. Chin, S. T. Ho, Design and modeling of waveguide-coupled single-modemicroring resonators, J. Lightwave Technol., 15, 1433-1446, 1998.
  • M. F. Yanik, S. Fan, M. Soljacic, and J. D. Joannopoulos, Optics Letters 28, 24,2506-2508 (2003)
  • M. Aoki, M. Suzuki, H. Sano, T. Kawano, T. Ido, T. Taniwatari, K. Uomi, A. Takai, InGaAs/InGaAsP MQW electroabsorption modulator integrated with a DFB laserfabricated by band-gap energy control selective area MOCVD, IEEE J QuantumElectron., 29, 6, 2088?2096, 1993.
  • M. Aoki, H. Sano, M. Suzuki, M. Takahashi, K. Uomi, A. Takai, Novel structureMQW electroabsorption modulator/DFB-laser integrated device fabricated by selectivearea MOCVD growth, Electronics Letters, 27, 23, 2138-2140, 1991.
  • Lubbers DW, Opitz N. PO2-Optode, A New Tool To Measure PO2 Of BiologicalGases And Fluids By Quantitative Fluorescence Photometry.PflugersArchiv-EuropeanJournal of Physiology 1975; 359(S) R145.
  • LiedbergB,LundstromI, Stenberg E. Principles of Biosensing with an ExtendedCoupling Matrixand Surface Plasmon resonance. Sensors and Actuators 1993; 11 63-72.
  • Liedberg B, Nylander C, Lunstrom I. Surface Plasmon Resonance For Gas DetectionAnd Biosensing* Sensors & Actuators1983; 4299- 304.
  • Leyden MR, Messinger RJ, SchumanC, Sharf T, Remcho VT, Squires TM, MinotED.Increasing the Detection Speed of an All-Electronic Real-Time Biosensor. Lab Chip2012; 12 954-959.
  • Lee MR, Fauchet PM. NanoscaleMicrocavity Sensor For Single Particle DetectionOptical Letters 2007; 32 3284-3286.
  • L.-L. Lin, Z.-Y. Li, K.-M.Ho, Lattice Symmetry Applied in Transfer-Matrix Methodsfor Photonic Crystals, Journal of Applied Physics, 94, 811, 2003.
  • L. Brzozowski and E. H. Sargent, J. Lightwave Technol. 19, 1, 114-119 (2001)
  • Katrien De Vos, Irene Bartolozzi, Etienne Schacht, Peter Bienstman, and Roel Baets, Silicon-on-Insulator microring resonator for sensitive and label-free biosensing, Opticsexpress, 15(12), (2007)
  • K.-T. Shiu, S. Agashe, S. Forrest, A Simple Monolithically Integrated OpticalReceiver Consisting of an Optical Preamplifier and a p-i-n Photodiode, IEEEPhotonics Technology Letters, 18, 8, 956-958, 2006.
  • K. Zinoviev, C. Dominguez, J. A. Plaza, V. J. C. Busto, and L. M. Lechuga, Sensors-A novel optical waveguide microcantilever sensor for the detection of nanomechanicalforces, J. Lightwave Technol. 24, 2132-2138, 2006.140
  • K. S. Yee, Numerical Solution of Initial Boundary Value Problems InvolvingMaxwell s Equations in Isotropic Media , IEEE Trans. Antennas and Propagation, 14,302-307, 1966.
  • K. Artmann, "Berechnung der Seitenversetzung des totalreflektierten Strahles,"Annalen der Physik 437, 87-102 (1948).
  • Jump up ^ Ruddon, Raymond W. (2007). Cancer biology (4th ed. ed.). Oxford: OxfordUniversity Press. p. 223. ISBN 9780195175431.
  • Johnson I. Fluorescent Probes for Living Cells. Histochemistry Journal 1998; 30 123-140.
  • John D. Joannopoulos, Steven G. Johnson, Hoshua N. Winn, and Robert D. Meade, The multilayer film, Chap.4 in Photonic crystals: molding the flow of light, Princetonuniversity press, pp. 44-65 (2008)
  • J. Zhang, Mingbin Yu, G. Q. Lo, and D. L. Kwong, IEEE Journal of SelectedTopic in Quantum Electronics 16, 1 (2010)69
  • J. Y. Ye, M. Ishikawa, Y. Yamane, N. Tsurumachi and H. Nakatsuka, Enhancement of two-photon excited fluorescence using one dimensional photoniccrystals, Appl. Phys. Lett., 75, 3605-3607 (1999)
  • J. Wallin, G. Landgren, K. Streubel, S. Nilsson, M. Oberg, Selective Area Regrowthof Butt-joint Coupled Waveguides in Multi-section DBR Lasers, Metalorganic VaporPhase Epitaxy Sixth International Conference, 73-74, 1992.
  • J. W. Raring, Advanced InP Based Monolithic Integration Using Quantum WellIntermixing and MOCVD Regroeth, Ph.D. dissertation, University of CaliforniaSanta Barbara, Santa Barbara, 2006.
  • J. S. Shumaker-Parry, and C. T. Campbell, Quantitative methods for spatiallyresolved adsorption/desorption measurements in real time by surface plasmonresonance microscopy, Anal. Chem., 76, 907-917 (2004)
  • J. S. Foresi, P.R. Villeneuve, J. Ferrera, E. R. Thoen, G. Steinmeyer, S. Fan, J. D.Joannopoulos, L. C. Kimerling, Henry I. Smith, and E. P. Ippen, Photonic-bandgapmicrocavities in optical waveguides, Nature, 390(13), (1997)
  • J. S. Barton, The Integration of Mach-Zehnder Modulators with Sampled GratingDBR Lasers, Ph.D. dissertation, University of California Santa Barbara, 2004.
  • J. Raing, M. Sysak, A. Tauke-Pedretti, M Dummer, E. Skogen, J. Barton, L. Coldren, Advanced Integration Schemes for High-Functionality/High-Performance PhotonicIntegrated Circuits, in Proceeding of SPIE ? the international Society for OpticalEngineering, A. M. Earman and R.T. Chen, Eds., 6126, 61 260H-1-20, 2006.
  • J. R. Hook, H.E. Hall, Solid State Physics. 2nd Edition, Wiley, 1995.
  • J. P. Berenger, A Perfectly Matched Layer for the Absorption of ElectromagneticWaves, J. Computational Physics, 114, 185-200, 1994.
  • J. K. S. Poon, J. Scheuer, S. Mookherjea, G. T. Paloczi, Y. Huang, and A. Yariv, Matrix analysis of microring coupled-resonator optical waveguides, Optics express, 12(1),(2004)
  • J. Homola, S. S. Yee, and G. Gauglitz, Surface plasmon resonance sensors:review, Sens. Actuators B, 54, 3-15 (1999)
  • J. Homola, Surface Plasmon Resonance Based Sensors, Springer: Dordrech, 2006.
  • J. Homola, Present and future of surface plasmon resonance biosensors, Anal.Bioanal Chem., 377, 528-539 (2003)
  • J. H. Song, J. W. Park, E. D. Sim, Y. Baek, Measurements of Coupling andReflection Characteristics of Butt-Joints in Passive Waveguide Integrated LaserDiodes, IEEE Photonics Technology Letters, 17, 9, 1791-1793, 2005.
  • J. Binsma, P. Thijs, T. VanDongen, E. Jansen, A. Staring, G. Van-DenHoven, L.Tiemeijer, Characterization of butt-joint InGaAsP waveguides and their application to1310 nm DBR-Type MQW ganin-clamped semiconductor optical amplifiers, IEICETrans. Electron., E80-C, 675?681, 1997.
  • J. B. Pendry, Calculating Photonic Band Structure, J. Phys. Cond. Matt., 8, 1085-1108, 1996.
  • J. A. Nolde, Design and Fabrication of a Refractometric Chemical Sensor UsingHeteodryned Widely Tunable Lasers, Ph.D. dissertation, University of CaliforniaSanta Barbara, 2005.
  • Ian M. White, Jonathan D. Suter, Hesam Oveys, Xudong Fan, Terry L. Smith,Junying Zhang, Barry J. Koch, and Michael A. Haase, Optics Express 15, 2 (2007 )
  • I. M. White, H. Zhu, J. D. Suter, H. Oveys, and X. Fan, Liquid core optical ringresonator label-free biosensor array for lab-on-a-chip development, Proc. SPIE 6380,63800F, 2006.
  • I. El-Kady, M.M. Sigalas, R. Biswas, K.M. Ho, and C.M. Soukoulis, MetallicPhotonic Crystals at Optical Wavelengths, Phys. Rev. B, 62(23), 15 299, 2000.
  • I. El-Kady, Modeling of photonic band gap crystals and applications, PhD. Thesis,Iowa State University, Ames, Iowa, 2002.142
  • I. Abdulhalim, Z. Mohammad, L. Akhlesh, Surface Plasmon Resonance forBiosensing: A Mini-Review, Electromagnetics, 28, 3, 214?242, 2008.
  • Hu P, Zhu CZ, Jin LH, Dong SJ. An Ultrasensitive Fluorescent Aptasensor forAdenosine Detection Based on Exonuclease III Assisted Signal Amplification. Biosensors& Bioelectronics 2012; 34(1) 83-87.
  • Hinde E,Digman MA, Welch C, Hahn KM,Gratton E. Biosensor Forster ResonanceEnergy Transfer Detection By The Phasor Approach To Fluorescence Lifetime ImagingMicroscopy, Microscopy Research and Technique, 2012; 75(3)271-281
  • Henghua Deng, David. O. Yevick, Chris Brooks, and Paul E. Jessop, Journal ofLightwave Technology 23, 1 (2005)
  • He Y, Wu Y, Mishra A, Acha V, Andrews T, HornsbyPJ. Biosensor technology inaging research and age-related diseases, Ageing Research Reviews 2012;11 1? 9.
  • H.P. Chiang, P.T. Leung, W.S. Tse, The surface plasmon enhancement effect onadsorbed molecules at elevated temperatures, J. Chem. Phys., 108, 2659- 2660, 1998.
  • H.J. Simon, D. E. Mitchell, J.G. Watson, Surface plasmons in silver films-a novelundergraduate experiment, American Journal of Physics, 43, 7, 630-636, 1975.59
  • H.A. Macleod, Thin film optical filters, New York, 1986.
  • H. Zhang, S. Das, Y. Huang, C. Li, S. Chen, H. Zhou, M. Yu, Patrick G. Q. Lo,and John T. L. Thong, Applied physics letters 101, 2 (2012)
  • H. Raether, Surface Plasmons on Smooth and Rough Surfaces and on Gratings, Springer, 1988.
  • H. Ouyang, C. C. Striemer, and P. M. Fauchet, Quantitative analysis of thesensitivity of porous silicon optical biosensors, Appl. Phys. Lett., 88, 163108(2006)
  • H. M. Lai, F. C. Cheng, and W. K. Tang, "Goos-Hanchen effect around and off thecritical angle," J. Opt. Soc. Am. A 3, 550-557 (1986).
  • H. M. Lai, C. W. Kwok, Y. W. Loo, and B. Y. Xu, Energy-flux pattern in the Goos-Hanchen effect, Phys. Rev.E 62, 7330?7339 (2000).
  • Guiseppi-Elie A. An Implantable Biochip to Influence Patient Outcomes FollowingTrauma-induced Hemorrhage, Journal Analytical and Bioanalytical Chemistry 2011, 399403-419
  • Gonzalez-Andrade M, Benito-Pena E, Mata R, Moreno-Bondi MC. Biosensor ForOnLine Fluorescent Detection Of Trifluoroperazine Based On Genetically ModifiedCalmodulin, Analytical And Bioanalytical Chemistry 2012; 402( 10) 3211-3218.
  • G. Y. Oh, D. G. Kim, and Y. W. Choi, The characterization of GH shifts of surfaceplasmon resonance in a waveguide using the FDTD method, Opt. Express 17, 20714-20720, 2009
  • G. Y. Oh, D. G. Kim, and Y. W. Choi, Extremely small plasmonic array sensor usingwideband sources, Electron. Lett. 47, 611-612, 2011.
  • G. Singh, R. P. Yadav, and V. Janyani, International Journal of Recent Trends inEngineering 1, 3, 115-119 (2009)
  • G. Griffel, Synthesis of optical filters using ring resonator arrays, IEEE Photon.Technol. Lett., 12, 810-812, 2000.
  • Fan X, White IM, Shopova SI, Zhu H, Suter JD, Sun Y. Sensitive Optical BiosensorsFor Unlabeled Targets: A Review, AnalyticaChimicaActa2008; 620 8-26.
  • F. Xia, V. M. Menon, S. R. Forrest, Pgotonic integration using asymmetric twinwaveguide(ATG) technology: part I-concepts and theory, IEEE Selected Topics inQuantum Electronics, 11, 1, 17-29, 2005.
  • F. Vollmer and S. Arnold, Whispering-gallery-mode biosensing: label-free detectiondown to single molecules, Nat. Methods 5, 591-596, 2008.
  • E. Yablonvitch, and T. J. Gmitter, Photonic band structures: The face-centeredcubiccase employing nonspherical atoms, Physical review letters, 67(17), (1991)
  • E. Skogen, J. Barton, S. DenBaars, L. Coldren, A quantum-well intermixing processfor wavelength-agile photonic integrated circuits, IEEE J. Sel. Topics in QuantumElectron., 8, 4, 863?869, 2002.
  • E. Kretschmann, H. Raether, Radiative decay of non-radiative surface plasmonsexcited by light, Z. Naturforsch,. Teil A, 23, 2135-2136, 1968.
  • E. Kretschmann and H. Raether, Radiative decay of non-radiative surface plasmonsexcited by light, Z. Naturforsch. A 23, 2135-2136, 1968.
  • E. J. Skogen, J. W. Raring, G. B. Morrison, C. S. Wang, V. Lal, M. L. Masanovic, L.A. Coldren, Monolithically Integrated Active Component: A Quantum ? WellIntermixing Approach, IEEE J. Sel. Topics in Quantum Electron., 11, 2, 2005.143
  • E. Chow, A. Grot, L. W. Mirkarimi, M. Sigalas, and G. Girolami, Ultracompactbiochemical sensor built with two-dimensional photonic crystal microcavity, Optics letters,29(10), (2004)
  • Defining Cancer. National Cancer Institute. Retrieved 10 June 2014.
  • David Hradetzky, Claas Mueller, and Holger Reinecke, Interferometric label-freebiomolecular detection system, J. Optics A: Pure Appl. Opt., 8, S360-S364 (2006)
  • D.G. Kim, J.H. Shin, C. Ozturk, J.C. Yi, Y. Chung, and N. Dagli, Total InternalReflection Mirror based InGaAsP Ring Resonators Integrated with Optical Amplifiers, IEEE Photon. Technol. Lett, 17, 1899-1901, 2005.
  • D.G. Kim, G.-Y. Oh, S. H. Kim, H. C. Ki, H. J. Kim, H. J. Kim, J. H. Kim, T. K.Chung, Y.-W. Choi, Triangular resonator with surface plasmon resonance around thecritical angle, Journal of Applied Physics, 110, 073107, 2011.
  • D. X. Xu, A. Densmore, A. Delage, P. Waldron, R. McKinnon, S. Janz, J. Lapointe,G. Lopinski, T. Mischki, E. Post, P. Cheben, and J. H. Schmid, Folded cavity SOImicroring sensors for high sensitivity and real time measurement of biomolecules binding, Opics express, 16(19), (2008)
  • D. Pissuwan, S. M. Valenzuela, and M. B. Cortie, Prospects for gold nanorodparticles in diagnostic and therapeutic applications, Biotechnol. Genet. Eng. Rev. 25,93-112, 2008.
  • D. Hofstetter, B. Maisenholder, H. Zappe, Quantum-well intermixing for fabricationof lasers and photonic integrated circuits, IEEE J. Sel. Topics Quantum Electron., 4, 4,794?802, 1998.
  • D. G. Kim, J. H. Shin, C. Ozturk, J. C. Yi, Y. Chung, and N. Dagli, Total internalreflection mirror-based InGaAsP ring resonators integrated with optical amplifiers, IEEE Phot. Techn. Lett. 17, 1899-1901, 2005.
  • D. G. Kim, G. Y. Oh, W. K. Choi, H. J. Kim, S. H. Kim, H. C. Ki, S. T. Kim, H. J. Ko,T. U. Kim, M. H. Yang, H. J. Kim, J. C. Yi, Y. Chung, N. Dagli, and Y. W. Choi, Extremely small multimode-interference coupled triangular resonator with sharpangle of incidence, Opt. Express 16, 21053-21058, 2008.
  • D. Erickson, Sudeep Mandal, Allen H. J. Yang, and Bernardo Cordovez, Nanobiosensors: optofluidc, electrical and mechanical approaches to biomorelculardetection at the nanoscale, Microfluidics and Nanofluidics, 4, 33-52 (2008)93
  • D. Dai and S. He, Highly sensitive sensor based on an ultra-high-Q Mach-Zehnderinterferometer-coupled microring, J. Opt. Soc. Am. B 26, 511-516, 2009.
  • D. A. May-Arrioja, N. Bickel, and P. Likamwa, Optical and Quantum Electronics,38, 7, 557-566 (2006)
  • D Souza SF. Microbial Biosensors. Biosensors and Bioelectronics 2001; 16, 337?353.
  • Chen X, Xu S, Yao N, Shi Y. 1.6 V Nanogenerator for Mechanical Energy HarvestingUsing PZT Nanofibers. Nano Letters 2010; 10(6) 2133-2137.
  • Chen JH, Fang ZY, Liu J, Zeng LW. A Simple And Rapid Biosensor For Ochratoxin ABased On A Structure-Switching Signaling Aptamer, Food Control 2012; 25(2) 555-560.
  • Chakravarty S, Topol ancik J, Bhattacharya P, Chakrabarti S, Kang Y, Meyerhoff ME.Ion Detection with Photonic Crystal Microcavities. Optical Letters 2005; 30 2578-2580.
  • C. S. Liu, V. K. Tripathi, Excitation of surface plasma waves over metallic surfacesby lasers and electron beams, Plasma Science, 28, 2, 353-358, 2000.
  • B.E. Little, J. Foresi, H. A. Haus, E. P. Ippen, W. Greene, S. T. Chu, UltracompactSi/SiO2 micro-ring resonator channel dropping filter, IEEE Photon. Technol. Lett., 10,549-551, 1998.
  • B. Mason, S. Chandrasekhar, A. Ougazzaden, C. Lentz, J. Geary, L. Buhl, L. Peticolas,K. Glogovsky, J. Freund, L. Reynolds, G. Przybylek, F. Walters, A. Sirenko, J.144Boardman, T. Kercher, M. Rader, J. Grenko, D. Monroe, L. Ketelsen, Photonicintegrated receiver for 40 Gbit/s transmission, Electronic Letters, 38, 20, 1196-10 097,2002.
  • B. Mason, G. Fish, S. DenBaars, and L. Coldren, Ridge waveguide sampled gratingDBR lasers with 22-nm quasi-continuous tuning range, IEEE Photon. Technol. Lett.,10, 9, 1211?1213, 1998.
  • B. J. Li, S. J. Chua, E. A. Fitzgerald, B. S. Chaudhari, S. Jiang, and Z. Cai, Appl.Phys. Lett. 85, 7, 1119-1121 (2004)
  • B. E. Little, S. T. Chu, W. Pan, Y. Kokubun, Microring resonator arrays for VLSIphotonics, IEEE Photon. Technol. Lett,. 12, 320-322, 2000.
  • B. E. Little, S. T. Chu, H. A. Haus, J. Foresi, J.-P Laine, Microring resonator channeldropping filters , J. Lightwave Technol., 15, 998-1005, 1997.
  • Aroua W, Haxha S, AbdelMalek F. Nano-Optic Label-Free Biosensors Based OnPhotonic Crystal Platform With Negative Refraction Optics Communications 2012; 2851970?1975.
  • Armani AM. Single Molecule Detection Using Optical Microcavities In:, Chapter 11 (),In: Chremmos I (eds.), Photonic Microresonator Research and Applications SpringerSeries in Optical Sciences: Springer Science+Business Media, LLC. 2010; 156.p253-273.
  • Aristeidis Karalis, E. Lidorikis, Mihai Ibanescu, J. D. Joannopoulos, and MarinSoljacic, Physical Review Letters 95, 6 (2005)
  • Ahuja T, Mir IA, Kumar D, Rajesh K. Biomolecular Immobilization On ConductingPolymers For Biosensing Applications. Biomaterials 2007; 28(5) 791?805.
  • A.J. Bennett, Influence of the electron charge distribution on surface-plasmondispersion, Physical Review B, 1, 1, 203, 1970.
  • A. Yalcin, K. C. Popat, J. C. Aldridge, T. A. Desai, J. Hryniewicz, N. Chbouki, B. E.Little, O. King, V. Van, and S. Chu, Optical sensing of biomolecules using microringresonators, IEEE J. Sel. Top. Quantum Electron. 12, 148-155, 2006.
  • A. Taflove, S. C. Hagness, Computational Electromagnetics: The Finite DifferenceTime Domain Method, 2nd ed. Ch. 7. Boston, MA: Artech House, 2000.
  • A. Taflove, S. C. Hagness, Computational Electromagnetics: The Finite DifferenceTime Domain Method . 2nd ed. Ch. 3. Boston, MA: Artech House, 2000.
  • A. Suzuki, J. Kondoh, Y. Matsui, S. Shiokawa, and K. Suzuki, Development of noveloptical waveguide surface plasmon resonance (SPR) sensor with dual light emittingdiodes, Sens. Actuator B-Chem. 106, 383-387, 2005.
  • A. Otto, Excitation of nonradiative surface plasma waves in silver by the method offrustrated total reflection, Zeitschrift fur Physik A Hadrons and Nuclei, 216, 4, 398-410, 1968.
  • A. Otto, Excitation of nonradiative surface plasma waves in silver by the method offrustrated total reflection, Z. Phys. Hadr. Nucl. 216, 398-410, 1968.
  • A. N. Starodumov, Yu. O. Barmenkov, A. Martinez, I. Torres, and L. A. Zenteno,Optics Letters, 23, 5, 352-354 (1998)
  • A. M. T. Pedretti, Monolithic Separate Absorption and Modulation Mach-ZehnderWavelength Converters, Ph.D. dissertation, University of California Santa Barbara,2007.
  • A. Kausaite, M. Dijk, J. Castrop, A. Ramanaviciene, J. P. Baltrus, J. Acaite, A.Ramanavicius, Surface plasmon resonance label-free monitoring of antibody antigeninteractions in real time, Biochemistry and Molecular Biology Education, 35, 57?63,2007.
  • ?[1] Clark LCJr, Lions C. Electrode Systems For Continuous Monitoring In CardiovascularSurgery. Annals of the New York Academy of Sciences 1968; 102 29-45.