Design of Biosensor for Diagnosis of Bio-molecules Using Surface Enhanced Raman Spectroscopy
Subject Areas : Biomedical Spectroscopy, Microscopy, Imaging, EndoscopyBabak Hassanshahi 1 , Sayyedjavad Sayyedfattahi 2
1 - Department of Electrical and Electronic Engineering, Islamic Azad University, Tabriz Branch, Tabriz, Iran
2 - Department of Electrical and Electronic Engineering, Islamic Azad University-Tabriz Branch, Tabriz, Iran
Keywords:
Abstract :
[1] M. Fleischmann, P.J. Hendra, and A. McQuillan, “Raman spectra of pyridine adsorbed at a silver electrode,” Chemical Physics Letters, vol. 26, pp.163-66, 1974.
[2] S. Cong, X. Liu, Y. Jiang, W. Zhang, and Z. Zhao " Surface Enhanced Raman Scattering Revealed by Interfacial Charge-Transfer Transitions," The Innovation, vol. 1, pp. 100051 (1-22), 2020
[3] M. M. Hernández, P. J. Rivero, J. Goicoechea and F. J. Arregui, “Trends in the Implementation of Advanced Plasmonic Materials in Optical Fiber Sensors (2010–2020),” Chemosensors, vol. 9, pp. 64 (1-38), 2021.
[4] M. Choi, T. Kang, S. H. Choi and K. M. Byun, “Dual modal Plasmonic substrates based on a convective self-assembly technique for enhancement in SERS and LSPR detection,” Optics Express, Vol. 29, pp. 6179-6187, 2021.
[5] C. Junfan, Z. Cong, Z. Jie, and Z. Yong, “Raman enhancement of large-area silver grating arrays based on self-assembled polystyrene microspheres,” Optical Materials Express. Vol. 11, pp, 1234-1248, 2021
[6] B. Huang, J. Wang, S. Huo, and W. Cai, “Facile fabrication of silver nanoparticles on silicon for surface‐enhanced infrared and Raman analysis,” Surface and Interface Analysis, vol. 40, pp. 81-84, 2008.
[7] B. Messinger, K. Von Raben, R. Chang, and P. Barber, “Local fields at the surface of noble-metal microspheres,” Physical Review B, vol. 24, pp. 649-657, 1981
[8] E. Le Ru, M. Meyer, E. Blackie, and P. Etchegoin, “Advanced aspects of electromagnetic SERS enhancement factors at a hot spot,” Journal of Raman Spectroscopy, vol. 39, pp.1127-1134, 2008.
[9] P. Camargo, M. Rycenga, and Y. Xia, “Isolating and probing the hot spot formed between two silver nanocubes,” Angewandte Chemie International Edition. Vol. 48, pp. 2180 (1-4), 2009
[10] K. Kneipp, H. Kneipp, and H. Bohr, “Single-molecule SERS spectroscopy,” Surface-Enhanced Raman Scattering: Springer, vol. 60, pp. 261-277, 2006
[11] E. Le Ru and P. Etchegoin, “Rigorous justification of the|E|4 enhancement factor in surface enhanced Raman spectroscopy,” chemical Physics letters, vol. 423, pp.63-66, 2006.
[12] Y. Hou, J. Xu, W. Li, and X. Wang, “Coupled sub wavelength gratings for surface-enhanced Raman spectroscopy,” Physical Chemistry Chemical Physics, vol. 13, pp. 10946-109451, 2011.
[13] J. Camden, J. Dieringer, Y. Wang, D. Masiello, L. Marks, G. Schatz, and R. P. Van Duyne, “Probing the structure of single-molecule surface-enhanced Raman scattering hot spots,” Journal of the American Chemical Society, vol. 130, pp. 12616 (1-7), 2008.
[14] K. Ma, J. M. Yuen, N. C. Shah, J. T. Walsh, J.r. M. R. Glucksberg and R. P. Van Duyne, “In Vivo, Transcutaneous Glucose Sensing Using Surface-Enhanced Spatially Offset Raman Spectroscopy: Multiple Rats, Improved Hypoglycemic Accuracy, Low Incident Power, and Continuous Monitoring for Greater than 17 Days” Anal. Chem. Vol. 83, pp. 9146–9152, 2011.
[15] E. Le Ru, E. Blackie, M. Meyer, P. Etchegoin, “Surface enhanced Raman scattering enhancement factors: a comprehensive study,” The Journal of Physical Chemistry C, vol. 111, pp. 13794-13803, 2007.
[16] J. Gersten and A. Nitzan, “Electromagnetic theory of enhanced Raman scattering by molecules adsorbed on rough surfaces,” The Journal of Chemical Physics, vol. 73, pp. 3023-3037, 1980.
[17] B. Sharma, R. Frontiera, A. Henry, E. Ringe, and R. Van Duyne, “SERS: materials, applications, and the future,” Materials today, vol. 15, pp.16-25, 2012.
[18] A. Haes, C. Haynes, A. McFarland, G. Schatz, R. Van Duyne, and S. Zou, “Plasmonic materials for surface-enhanced sensing and spectroscopy,” MRS bulletin, vol. 30, pp. 368-375, 2005.
[19] H. Wei, F. Hao, Y. Huang, W. Wang, P. Nordlander, and H. Xu, “Polarization dependence of surface-enhanced Raman scattering in gold nanoparticle− nanowire systems,” Nano letters, vol. 8, pp. 2497-502, 2008.
[20] H. Xu and M. Käll, “Polarization‐Dependent Surface‐Enhanced Raman Spectroscopy of Isolated Silver Nanoaggregates,” ChemPhysChem, vol. 4, pp. 1001-1005, 2003.
[21] Y. Zhou, X. Li, X. Ren, L. Yang, and J. Liu, “Designing and fabricating double resonance substrate with metallic nanoparticles–metallic grating coupling system for highly intensified surface-enhanced Raman spectroscopy,” Analyst, vol. 139, pp. 4799-4805, 2014.
[22] Z. Yang, J. Aizpurua, and H. Xu, “Electromagnetic field enhancement in TERS configurations,” Journal of Raman Spectroscopy, vol. 40, pp. 1343-1348, 2009.
[23] E. Hao and G. Schatz, “Electromagnetic fields around silver nanoparticles and dimers,” The Journal of chemical physics, vol. 120, pp. 357-66, 2004.
[24] J. Lee, J. Nam, K. Jeon, D. Lim, H. Kim, S. Kwon, H. Lee, and Y. D. Suh, “Tuning and maximizing the single-molecule surface-enhanced Raman scattering from DNA-tethered nanodumbbells,” ACS nano, vol. 6, pp. 9574-9584, 2012.
[25] Z. Yang, Q. Li, F. Ruan, Z. Li, B. Ren, H. Xu, and Zh. Tian “FDTD for Plasmonics: Applications in enhanced Raman spectroscopy,” Chinese Science Bulletin, vol. 55, pp. 2635-2642, 2010.
[26] P.B. Johnson and R. Christy, “Optical constants of the noble metals,” Physical review B, vol. 6, pp. 4370 (1-10), 1972.
[27] T. L. McMeekin, M. L. Groves, and N. J. Hipp, “Refractive Indices of Amino Acids, Proteins, and Related Substances,” Advances in Chemistry, Vol. 44, pp. 54-66, 1964.
[28] H. Zhao, P. H. Brown, and P. Schuck, “On the Distribution of Protein Refractive Index Increments,” Biophysical Journal, Vol. 100, pp. 2309–2317, 2011.
[29] H. P. Erickson, “Size and Shape of Protein Molecules at the Nanometer Level Determined by Sedimentation, Gel Filtration, and Electron Microscopy,” Biological Procedures Online, Vol. 11, pp. 32-51, 2009.
[30] X. Qian and S. Nie, “Single-molecule and single-nanoparticle SERS: from fundamental mechanisms to biomedical applications,” Chemical Society Reviews, vol. 37, pp. 912-920, 2008.