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Application of porous glasses in microfluidic devices

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Nowadays a perspective appears of applying porous glasses in microanalytical devices. The opportunity of application of porous glasses as optical sensors has been shown in the present paper. Preliminary results of studying the electroosmotic flows through porous glasses are discussed.
Czasopismo
Rocznik
Strony
31--38
Opis fizyczny
Bibliogr. 18 poz.
Twórcy
autor
  • Institute for Analytical Instrumentation RAS, St Petersburg, Russia
Bibliografia
  • [1] REYES D.R., LOSSIFIDIS D., AUROUX P.A., MANZ A., Micro total analysis systems. 1. Introduction, theory, and technology, Analytical Chemistry 74(12), 2002, pp. 2623–36.
  • [2] AUROUX P.A., IOSSIFIDIS D., REYES D.R., MANZ A., Micro total analysis systems. 2. Analytical standard operations and applications, Analytical Chemistry 74(12), 2002, pp. 2637–52.
  • [3] DITTRICH P.S., TACHIKAWA K., MANZ A., Micro total analysis systems. Latest advancements and trends, Analytical Chemistry 78(12), 2006, pp. 3887–908.
  • [4] ABGRALL P ., GUÉ A.-M., Lab-on-chip technologies: making a microfluidic network and coupling it into a complete microsystem – a review, Journal of Micromechanics and Microengineering 17(5), 2007, pp. R15–R49.
  • [5] MELIN J., QUAKE S.R., Microfluidic large-scale integration: the evolution of design rules for biological automation, Annual Review of Biophysics and Biomolecular Structure 36, 2007, pp. 213–31.
  • [6] JANASEK D., FRANZKE J., MANZ A., Scaling and the design of miniaturized chemical-analysis systems, Nature 442(7101), 2006, pp. 374–80.
  • [7] CHECHETKIN V.R., PROKOPENKO D.V., MAKAROV A.A., ZASEDATELEV A.S., Biochips for medical diagnostics, Nanotechnologies in Russia 1(1–2), 2006, pp. 13–27.
  • [8] KHANDURINA J., GUTTMAN A., Bioanalysis in microfluidic devices, Journal of Chromatography A 943(2), 2002, pp. 159–83.
  • [9] EIJKEL J.C.T., VAN DEN BERG A., Nanofluidics: what is it and what can we expect from it?, Microfluidics and Nanofluidics 1(3), 2005, pp. 249– 67.
  • [10] DE JONG J., LAMMERTINK R.G.H., WESSLING M., Membranes and microfluidics: a review, Lab on a Chip 6(9), 2006, pp. 1125–39.
  • [11] YAIRI M., RICHTER C., Massively parallel microfluidic pump, Sensors and Actuators A: Physical 137(2), 2007, pp. 350–6.
  • [12] CHUNSUN ZHANG, DA XING, YUYUAN LI, Micropumps, microvalves, and micromixers within PCR microfluidic chips: advances and trends, Biotechnology Advances 25(5), 2007, pp. 483–514.
  • [13] YAO S., SANTIAGO J.G., Porous glass electroosmotic pumps: theory, Journal of Colloid and Interface Science 268(1), 2003, pp. 133–42.
  • [14] KREISBERG V.A., RAKCHEEV V.P., ANTROPOVA T.V., Influence of concentration of an acid on morphology micro- and mezopores of porous glasses, Fizika i Khimiya Stekla 32(6), 2006, pp. 845–54.
  • [15] CORTAT F., The Kubelka–Munk theory, applications and modifications, pre-print (2004), http://staffwww.itn.liu.se/~freco/Publications/Courses/Paper_optics_report.pdf.
  • [16] SCHRUM K.F., LANCASTER III J.M., JOHNSTON S.E., GILMAN S.D., Monitoring electroosmotic flow by periodic photobleaching of a dilute, neutral fluorophore, Analytical Chemistry 72(18), 2000, pp. 4317–21.
  • [17] PITTMAN J.L., GILMAN S.D., SCHRUM K.F., On-line monitoring of electroosmotic flow for capillary electrophoretic separations, The Analyst 126(8), 2001, pp. 1240–7.
  • [18] DEVASENATHIPATHY S., SANTIAGO J.G., Electrokinetic flow diagnostics, [In] Micro- and Nano-Scale Diagnostic Techniques, [Ed.] K.S. Breuer, Springer Verlag, New York 2003.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPW9-0006-0026
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