Parte de libro

Calvo, E.; Kanazawa, K.; Perrot, H.; Jimenez, Y. "Combination of quartz crystal microbalance with other techniques" (2008) Piezoelectric Transducers and Applications:307-330
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Abstract:

As implied by its acronym, the quartz crystal microbalance was first used to determine the mass of material deposited on its surface. A heuristic description of the linear relation between the change in its resonant frequency Δf, from its unloaded resonant frequency f0, and the mass density, m, was recognized by Sauerbrey [1] and led to the now standard use of the QCM to measure mass deposition. This Sauerbrey relation is described by (Eq. 3.10): Δf =-2f02/√ ρQμQ m' (13.1) The coefficient preceding m is a fixed quantity, depending only on the parameters of the unloaded quartz. Using this relation, one can determine the mass density (kg/m2) deposited onto the QCM surface. Although the range of validity of Eq. (13.1) has limits, it has created a whole industry to measure deposition. From the single measurable of Δf, one can measure the single parameter m. As shown in Chaps. 3 and 14, it is possible to extract more information from the QCM. For example, when m exceeds certain values, Eq. (13.1) is no longer satisfied. A non-linear behavior is observed and the shape of the non-linearity can be used to extract information on elastic films concerning the shear modulus, G1, of the film (Chap. 14). This was put on a quantitative basis by Lu and Lewis in 1972 [2]. More recently, there are activestudies on the determination of many other parameters using the QCM. Some of the variables affecting the measurements have been recently cited by Lucklum [3]. Even for a simple example, when there is a viscoelastic film on the QCM and the quartz/film is immersed in a liquid, there are a number of parameters which are involved in QCM measurements. In addition to the quartz parameters, there are the density of the film ρ1, the shear storage modulus of the film G1, the shear loss modulus of the film G1, the thickness of the film h1, the density of the liquid ρ 2, the shear loss modulus of the liquid G2 and the shear storage modulus of the liquid G2. It is clear that there are a large number of parameters that influence the behavior of the QCM. Most of the measurable to date have focused on two values, the change in frequency and the change in dissipation as the QCM is loaded. It is not possible to deconvolute these two variables into a determination of the materials parameters (see Chap. 14). Therefore, it is not surprising that additional measurements in conjunction with the QCM measurements are being undertaken to increase the number of measureables. © Springer-Verlag Berlin Heidelberg 2008.

Registro:

Documento: Parte de libro
Título:Combination of quartz crystal microbalance with other techniques
Autor:Calvo, E.; Kanazawa, K.; Perrot, H.; Jimenez, Y.
Filiación:Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Buenos Aires, Argentina
Department of Chemical Engineering, Stanford University, Stanford, United States
Laboratoire Interfaces et Systèmes Electrochimiques, Université P. et M. Curie, UPR 15 du CNRS, France
Departamento de Ingeniería Electrónica, Universidad Politécnica de Valencia, Valencia, Spain
Año:2008
Página de inicio:307
Página de fin:330
DOI: http://dx.doi.org/10.1007/978-3-540-77508-9_13
Título revista:Piezoelectric Transducers and Applications
Título revista abreviado:Piezoelectric Transducers and Applic.
Registro:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_97835407_v_n_p307_Calvo

Referencias:

  • Sauerbrey, G., Verwendung von schwingquarzen zur wägung dünner schichten und zur mikrowägung (1959) Zeitschrift Fuer Physik, 155 (2), pp. 206-222
  • Lu C, S., Lewis, O., Investigation of film-thickness determination by oscillating quartz resonators with large mass load (1972) Journal of Applied Physics, 43 (11), pp. 4385-4390
  • Lucklum, R., Hauptmann, P., Acoustic microsensors the challenge behind microgravimetry (2006) Anal. Bioanal. Chem, 384, pp. 667-682
  • Kanazawa, K.K., Gordon II, J.G., Frequency of a quartz microbalance in contact with liquid (1985) Anal. Chem., 57, pp. 1770-1771
  • Bruckenstein, S., Shay, M., Experimental aspects of use of the quartz crystal microbalance in solution (1985) Electrochim. Acta, 30, pp. 1295-1300
  • Bard, A.J., Faulkner, L.R., (2001) Electrochemical methods. Fundamentals and applications, , 2nd. edn., John Wiley and Sons, New York
  • Calvo, E.J., Danilowicz, C., Forzani, E., Wolosiuk, A., Otero, M., Layered protein films: Quartz crystal resonator frequency and admittance analysis (2003) Biomolecular Films: Design, Function and Applications, , In Rusling, J.F. (Ed.) Marcel Dekker, New York (Chap. 7
  • Calvo, E.J., Etchenique, R.A., Kinetic applications of the electrochemical quartz crystal microbalance (eqcm) (1999) Comprehensive chemical kinetics, 37, pp. 461-487. , R.G. Compton and G. Hacock (Eds.) Elsevier, Amsterdam
  • Arnau, A., Jimenez, Y., Fernandez, R., Torres, R., Otero, M., Calvo, E.J., Viscoelastic characterization of electrochemically prepared conducting polymer films by impedance analysis at quartz crystal. Study of the surface roughness effect on the effective values of the viscoelastic properties of the coating (2006) J. Electrochem Soc., 153, pp. 455-466
  • Torres, R., Arnau, A., Perrot, H., Electronic system for experimentation in ac electrogravimetry ii: Implemented design (2007) Revista EIA, 7, pp. 63-73
  • Gabrielli, C., García-Jareño, J.J., Keddam, M., Perrot, H., Vicente, F., Ac-electrogravimetry study of electroactive thin films. I. Application to prussian blue (2002) Journal of Physical Chemistry B., 106 (12), pp. 3182-3191
  • Gabrielli, C., García-Jareño, J.J., Keddam, M., Perrot, H., Vicente, F., Ac-electrogravimetry study of electroactive thin films. Ii. Application to polypyrrole (2002) Journal of Physical Chemistry B, 106 (12), pp. 3192-3201
  • Giménez-Romero, D., Bueno, P.R., García-Jareño, J.J., Gabrielli, C., Perrot, H., Vicente, F., Kinetic aspects of ion exchange in khfek[fe(cn)6]l.Mh2o compounds: A combined electrical and mass transfer functions approach (2006) Journal of Physical Chemistry, 110 (39), pp. 19352-19363
  • Benito, D., Gabrielli, C., García-Jareño, J.J., Keddam, M., Perrot, H., Vicente, F., An electrochemical impedance and ac-electrogravimetry study of pnr films in aqueous salt media (2002) Electrochem. Comm, 4 (8), pp. 613-619
  • Gabrielli, C., Hémery, P., Liatsi, P., Masure, M., Perrot, H., An electrogravimetric study of an all-solid-state potassium selective electrode with prussian blue as the electroactive solid internal contact (2005) J. Electrochem. Soc., 152 (12), pp. 219-224
  • Gabrielli, C., Hémery, P., Liatsi, P., Masure, M., Perrot, H., Acelectrogravimetry study of an all solid state potassium selective electrode with polypyrrole as the solid internal contact (2006) Electrochim. Acta, 51, pp. 1704-1712
  • Al Sana, S., Gabrielli, C., Perrot, H., Influence of antibody insertion on the electrochemical behavior of polypyrrole films by using fast qcm measurements (2003) J. Electrochem. Soc., 150 (9), pp. 444-449
  • Getting to know your potentiostat, part I, , Princenton Applied Research. Electrochemical Instruments. Technical Note 200
  • Forzani, E.S., Otero, M., Perez, M.A., Lopez Teijelo, M., Calvo, E.J., The structure of layer-by-layer self-Assembled glucose oxidase and os(bpy)2clpych2nh-poly(allylamine) multilayers: Ellipsometric and quartz crystal microbalance studies (2002) Langmuir, 18, pp. 4020-4029
  • Hinsberg, W.D., Kanazawa, K.K., Determination of the viscoelastic properties of polymer films using a compensated phase-locked oscillator circuit (2002) Anal. Chem., 74, pp. 125-131
  • Arwin, H., Ellipsometry on thin organic layers of biological interest: Characterization and applications (2000) Thin Solid Films, 377, pp. 48-56
  • Azzam, R.M.A., Bashara, N.H., (1977) Ellipsometry and Polarized Light, , North-Holland, Amsterdam
  • Gottesfeld, S., Kim, Y.-T., Redondo, A., Recent applications of ellipsometry in electrochemical systems (1995) Physical Electrochemistry: Principles, Methods, and Applications, pp. 393-467. , I. Rubinstein (Ed.) , Marcel Dekker, New York, Chap. 9
  • De Feijter, J.A., Benjamins, J., Veer, F.A., Ellipsometry as a tool to study the ad-sorption of synthetic and biopolymers at the air-water interface (1978) Biopolymers, 17, pp. 1759-1772
  • Hook, F., Kasemo, B., Nylander, T., Fant, C., Scott, K., Elwing, H., Variations in coupled water, viscoelastic properties, and film thickness of a mepf-1 protein film during adsorption and cross-linking: A quartz crystal microbalance with dissipation monitoring, ellipsometry, and surface plasmon resonance study (2001) Anal. Chem., 73 (24), pp. 5796-5804
  • Domack, A., Johannsmann, D., Shear birefringence measurements on polymer thin films deposited on quartz resonators (1998) J. Appl. Phys., 83 (3), pp. 1286-1295
  • Bailey, L.E., Kambhampati, D., Kanazawa, K.K., Knoll, W., Frank, C.W., Using surface plasmon resonance and the quartz crystal microbalance to monitor in situ the interfacial behavior of thin organic films (2002) Langmuir, 18 (2), pp. 479-489
  • Gabai, R., Sallacan, N., Chegel, V., Bourenko, T., Katz, E., Willner, I., Characterization of the swelling of acrylamidophenylboronic acidacrylamide hydrogels upon interaction with glucose by faradaic impedance spectroscopy, chronopotentiometry, quartz-crystal microbalance (qcm), and surface plasmon resonance (spr) experiments (2001) J. Phys. Chem. B., 105 (34), pp. 8196-8202
  • Borovsky, B., Mason, B.L., Krim, J., Scanning tunneling microscope measurements of the amplitude of vibration of a quartz crystal oscillator (2000) Journal of Applied Physics, 88 (7), pp. 4017-4021
  • Borovsky, B., Krim, J., Syed Asif, S.A., Wahl, K.J., Measuring nanomechanical properties of a dynamic contact using an indenter probe and quartz crystal microbalance (2001) Journal of Applied Physics, 90, pp. 6391-6396
  • Bailey L, E., Kanazawa K, K., Bhatara, G., Tyndall, G.W., Kreiter, M., Knoll, W., Frank, C.W., Multistep adsorption of perfluoropolyether hard-disk lubricants onto amorphous carbon substrates from solution (2001) Langmuir, 17, pp. 8145-8155
  • Bailey, L.E., Kambhampati, D., Kanazawa, K.K., Knoll, W., Frank, C.W., Using surface plasmon resonance and the quartz crystal microbalance to monitor in situ the interfacial behavior of thin organic films (2002) Langmuir, 18, pp. 479-489
  • Kwak, J., Bard, A.J., Scanning electrochemical microscopy. Theory of the feedback mode (1989) Anal. Chem., 61 (11), pp. 1221-1227
  • Liu, H.Y., Fan, F.R.F., Lin, C.W., Bard, A.J., Scanning electrochemical and tunneling ultramicroelectrode microscope for high-resolution examination of electrode surfaces in solution (1986) J. Am. Chem. Soc., 108 (13), pp. 3838-3839
  • Zhou, F., Thierry, D., Isaacs, H.S., A high-resolution probe for localized electrochemical impedance spectroscopy measurements (1997) J. Electrochem. Soc., 144, pp. 1957-1965
  • De Wit, J.W.H., Van Der Weijde, D.H., De Jong, A., Blekkenhorst, F., Meijers, S.D., Local measurements in electrochemistry and corrosion technology (1998) Mater. Sci Forum, 289-292, pp. 69-75
  • Stratmann, M., Feser, R., Leng, A., Corrosion protection by organic films (1994) Electrochimica Acta, 39 (8-9), pp. 1207-1214
  • Lohrengel, M.M., Moehrig, A., Pilaski, M., Electrochemical surface analysis with the scanning droplet cell (2000) Fres. J. Anal. Chem., 367, pp. 334-339
  • Suter, T., Böhni, H., A new microelectrochemical method to study pit initiation on stainless steels (1997) Electrochimica Acta, 42 (20-22), pp. 3275-3280
  • MacPherson, J.V., Unwin, P.R., (2001) Scanning electrochemical microscopy, , A. J. Bard and M. V. Mirkin. Ed., Marcell Dekker Inc., New York
  • Horrocks, R.H., Schmidtke, D., Heller, A., Bard, A.J., Scanning electrochemical microscopy. 24. Enzyme ultramicroelectrodes for the measurement of hydrogen peroxide at surfaces (1993) Anal. Chem., 65 (24), pp. 3605-3614
  • Ballesteros Katemann, B., Schulte, A., Koudelka-Hep, M., Calvo, E.J., Schuhmann, W., Localised electrochemical impedance spectroscopy with high lateral resolution by means of alternating current scanning electrochemical microscopy (2002) Electrochemistry Communications, 4 (2), pp. 134-138
  • Horrocks, B.R., Mirkin, M.V., Pierce, D.T., Bard, A.J., Nagy, G., Toth, K., Scanning electrochemical microscopy. 19. Ion-selective potentiometric microscopy (1993) Anal. Chem., 65, pp. 1213-1224
  • Wei, C., Bard, A.J., Nagy, G., Toth, K., Quantitative extraction using an internally cooled solid phase microextraction device (1995) Anal. Chem., 67, pp. 34-43
  • Kwak, J., Bard, A.J., Scanning electrochemical microscopy. Theory of the feedback mode (1989) Anal. Chem., 61 (11), pp. 1221-1227
  • Ludwig, M., Kranz, C., Schuhmann, W., Gaub, H.E., Topography feedback mechanism for the scanning electrochemical microscope based on hydrodynamic forces between tip and sample (1995) Review of Scientific Instruments, 66, pp. 2857-2860
  • Hengstenberg, A., Blöchl, A., Dietzel, I.D., Schuhmann, W., Spatially resolved detection of neurotransmitter secretion from individual cells by means of scanning electrochemical microscopy (2001) Angew. Chem. Int. Ed. Engl, 40, pp. 905-908
  • Hengstenberg, A., Kranz, C., Schuhmann, W., Facilitated tippositioning and applications of non-electrode tips in scanning electrochemical microscopy using a shear forced base constant-distance mode (2000) Chemistry-A European Journal, 6, pp. 1547-1554
  • Shi, G., Garfias-Mesias, L.F., Smyrl, W.H., Preparation of a goldsputtered optical fiber as a microelectrode for electrochemical microscopy (1998) J. Electrochem. Soc., 145, pp. 2011-2016
  • Kranz, C., Gaub, H.E., Schuhmann, W., Polypyrrole. Towers grown with the scanning electrochemical microscope (1996) Adv. Mater., 8, pp. 634-637
  • Mirkin, M.V., Recent advances in scanning electrochemical microscopy (1996) Anal. Chem., 68, pp. 177A-182A
  • Bard, A.J., Fan, F.R.F., Mirkin, M.V., Scanning electrochemical microscopy Electroanalytical Chemistry, 18, pp. 243-373. , A.J. Bard Ed., Marcel Dekker, New York
  • Gollas, B., Bartlett, P.N., Denuault, G., An instrument for simultaneous eqcm impedance and secm measurements (2000) Anal. Chem., 72 (2), pp. 349-356
  • Shin, M.S., Jeon, I.C., Frequency-distance responses in secmeqcm-A novel method for calibration of the tip-sample distance (1998) Bull. Korean Chem. Soc., 19, pp. 1227-1232
  • Cliffel, D.E., Bard, A.J., Scanning electrochemical microscopy. 36. A combined scanning electrochemical microscope-quartz crystal microbalance instrument for studying thin films (1998) Anal. Chem, 70 (9), pp. 1993-1998
  • Hillier, A.C., Ward, M.D., Scanning electrochemical mass sensitivity mapping of the quartz crystal microbalance in liquid media (1992) Anal. Chem., 64, pp. 2539-2554
  • Calvo, E.J., Etchenique, R.A., Bartlett, P.N., Singhal, K., Santamaria, C., Quartz crystal impedance studies at 10 mhz of viscoelastic liquids and films (1997) Faraday Discuss. Chem. Soc., 107, pp. 141-157
  • Calvo, E.J., Danilowicz, C., Etchenique, R.A., Measurement of viscoelastic changes at electrodes modified with redox hydrogels with a quartz crystal device (1995) J. Chem. Soc. Faraday Trans, 91, pp. 4083-4091
  • Smith, A.L., Shirazi, H.M., Quartz microbalance microcalorimetry a new method for studying polymer-solvent thermodynamics (2000) Journal of Thermal Analysis and Calorimetry, 59, pp. 171-186
  • Edwardsson, M., Rodalh, M., Kasemo, B., Hook, F., A dualfrequency qcm-d setup operating at elevated oscillation amplitudes (2006) Anal. Chem., 77 (15), pp. 4918-4926
  • Bandey, H.L., Hillmann, A.R., Brown, M.J., Martin, S.J., Viscoelastic characterization of electroactive polymer films at electrode/solution interface (1997) Faraday Discuss. Chem. Soc., 107, pp. 105-121
  • Bard, A.J., Faulkner, L.R., Spectroelectrochemistry and other coupled characterization methods (2001) Electrochemical Methods: Fundamental And Applications, , 2nd Ed. John Wiley & sons Ed. Chap. 17
  • Otero, M.J., (2003) Construcción y caracterización de estructuras complejas de biomoléculas con aplicación en el diseño de biosensores, , Tesis Doctoral, Universidad de Buenos Aires

Citas:

---------- APA ----------
Calvo, E., Kanazawa, K., Perrot, H. & Jimenez, Y. (2008) . Combination of quartz crystal microbalance with other techniques. Piezoelectric Transducers and Applications, 307-330.
http://dx.doi.org/10.1007/978-3-540-77508-9_13
---------- CHICAGO ----------
Calvo, E., Kanazawa, K., Perrot, H., Jimenez, Y. "Combination of quartz crystal microbalance with other techniques" . Piezoelectric Transducers and Applications (2008) : 307-330.
http://dx.doi.org/10.1007/978-3-540-77508-9_13
---------- MLA ----------
Calvo, E., Kanazawa, K., Perrot, H., Jimenez, Y. "Combination of quartz crystal microbalance with other techniques" . Piezoelectric Transducers and Applications, 2008, pp. 307-330.
http://dx.doi.org/10.1007/978-3-540-77508-9_13
---------- VANCOUVER ----------
Calvo, E., Kanazawa, K., Perrot, H., Jimenez, Y. Combination of quartz crystal microbalance with other techniques. Piezoelectric Transducers and Applic. 2008:307-330.
http://dx.doi.org/10.1007/978-3-540-77508-9_13