Raman spectroscopy techniques for the detection of biological samples in suspensions and as aerosol particles: A review

被引:17
作者
Félix-Rivera H. [1 ]
Hernández-Rivera S.P. [1 ]
机构
[1] Department of Chemistry, Chemical Imaging Center (CCSD/CIC), University of Puerto Rico-Mayagüez, Mayagüez, 00681-9000
来源
Hernández-Rivera, S.P. (samuel.hernandez3@upr.edu) | 1600年 / Springer Science and Business Media, LLC卷 / 13期
关键词
Bioaerosol detection; Coherent anti-stokes Raman spectroscopy; Raman spectroscopy; Resonance Raman spectroscopy; Surface enhanced Raman scattering; UV Raman spectroscopy;
D O I
10.1007/s11220-011-0067-0
中图分类号
学科分类号
摘要
This article reviews current scientific literature focusing on Raman spectroscopy modalities that have been successfully applied to the detection of biological samples in aqueous suspensions and in aerosols. Normal Raman, surface enhanced Raman scattering, coherent anti-stokes Raman scattering, resonance Raman and UV-Raman spectropies, allow the detection of biological samples in situ in the near field and as well as in the far field at standoff distances. Applications span from fundamental studies to applied research in areas of defense and security and in monitoring of environmental pollution. A primary focus has been placed on biological samples including bacteria, pollen, virus, and biological contents in these specimens, in suspensions, and in aerosols. Several Raman spectroscopy studies have been reviewed to show how various modalities can achieve detection in these biosystems. Current data generated by our group is also included. Necessary parameters used to accomplish the detection and data analysis, which could also be used to interpret the results and to render the methodologies robust and reliable, are discussed. © 2011 Springer Science+Business Media, LLC.
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页码:1 / 25
页数:24
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共 74 条
  • [1] Yan F., Vo-Dinh T., Surface-enhanced Raman scattering detection of chemical and biological agents using a portable Raman integrated tunable sensor, Sensors and Actuators, B: Chemical, 121, 1, pp. 61-66, (2007)
  • [2] Kiefer W., Recent advances in linear and nonlinear Raman spectroscopy i, Journal of Raman Spectroscopy, 38, pp. 1538-1553, (2007)
  • [3] Kiefer W., Recent advances in linear and nonlinear Raman spectroscopy II, Journal of Raman Spectroscopy, 39, pp. 1710-1725, (2008)
  • [4] Pacheco-Londono L.C., Ortiz-Rivera W., Primera-Pedrozo O.M., Hernandez-Rivera S.P., Vibrational spectroscopy standoff detection of explosives, Analytical and Bioanalytical Chemistry, 395, pp. 323-335, (2009)
  • [5] Wallin S., Pettersson A., Ostmark H., Hobro A., Laser-based standoff detection of explosives: A critical review, Analytical and Bioanalytical Chemistry, 395, pp. 259-274, (2009)
  • [6] Simard J.R., Roy G., Mathieu P., Larochelle V., McFee J., Ho J., Standoff sensing of bioaerosols using intensified range-gated spectral analysis of laser-induced fluorescence, IEEE Transactions on Geoscience and Remote Sensing, 42, pp. 865-874, (2004)
  • [7] Esposito A.P., Talley C.E., Huser T., Hollars C.W., Schaldach C.M., Lane S.M., Analysis of single bacterial spores by micro-Raman spectroscopy, Applied Spectroscopy, 57, pp. 868-871, (2003)
  • [8] Tripathi A., Jabbour R.E., Guicheteau J.A., Christesen S.D., Emge D.K., Fountain A.W., Bottiger J.R., Emmons E.D., Snyder A.P., Bioaerosol analysis with Raman chemical imaging microspectroscopy, Analytical Chemistry, 81, pp. 6981-6990, (2009)
  • [9] Rosch P., Harz M., Peschke K.-D., Ronneberger O., Burkhardt H., Schule A., Schmauz G., Lankers M., Hofer S., Thiele H., Motzkus H.-W., Popp J., On-line monitoring and identification of bioaerosols, Analytical Chemistry, 78, pp. 2163-2170, (2006)
  • [10] Carmona P., Vibrational-spectra and structure of crystalline dipicolinic acid and calcium dipicolinate trihydrate, Spectrochimica Acta Part A-Molecular and Biomolecular Spectroscopy, 36, pp. 705-712, (1980)