- -

Characterization of Screen-Printed Organic Electrochemical Transistors to Detect Cations of Different Sizes

RiuNet: Repositorio Institucional de la Universidad Politécnica de Valencia

Compartir/Enviar a

Citas

Estadísticas

  • Estadisticas de Uso

Characterization of Screen-Printed Organic Electrochemical Transistors to Detect Cations of Different Sizes

Mostrar el registro sencillo del ítem

Ficheros en el ítem

dc.contributor.author Contat-Rodrigo, L es_ES
dc.contributor.author Pérez Fuster, Clara es_ES
dc.contributor.author Lidon-Roger, Jose V. es_ES
dc.contributor.author Bonfiglio, Annalisa es_ES
dc.contributor.author Garcia-Breijo, Eduardo es_ES
dc.date.accessioned 2017-03-08T09:13:30Z
dc.date.available 2017-03-08T09:13:30Z
dc.date.issued 2016
dc.identifier.issn 1424-8220
dc.identifier.uri http://hdl.handle.net/10251/78577
dc.description.abstract [EN] A novel screen-printing fabrication method was used to prepare organic electrochemical transistors (OECTs) based on poly(3,4-ethylenedioxythiophene) doped with polysterene sulfonate (PEDOT:PSS). Initially, three types of these screen-printed OECTs with a different channel and gate areas ratio were compared in terms of output characteristics, transfer characteristics, and current modulation in a phosphate buffered saline (PBS) solution. Results confirm that transistors with a gate electrode larger than the channel exhibit higher modulation. OECTs with this geometry were therefore chosen to investigate their ion-sensitive properties in aqueous solutions of cations of different sizes (sodium and rhodamine B). The effect of the gate electrode was additionally studied by comparing these all-PEDOT:PSS transistors with OECTs with the same geometry but with a non-polarizable metal gate (Ag). The operation of the all-PEDOT:PSS OECTs yields a response that is not dependent on a Na+ or rhodamine concentration. The weak modulation of these transistors can be explained assuming that PEDOT:PSS behaves like a supercapacitor. In contrast, the operation of Ag-Gate OECTs yields a response that is dependent on ion concentration due to the redox reaction taking place at the gate electrode with Cl− counter-ions. This indicates that, for cation detection, the response is maximized in OECTs with non-polarizable gate electrodes. es_ES
dc.description.sponsorship Financial support from FEDER and Spanish Government funds (MAT2015-64139-C4-3-R (MINECO/FEDER)) and GVA funds (AICO/2015/103) are gratefully acknowledged.
dc.language Inglés es_ES
dc.publisher MDPI es_ES
dc.relation.ispartof Sensors es_ES
dc.rights Reserva de todos los derechos es_ES
dc.subject Organic electrochemical transistors es_ES
dc.subject Screen-printing es_ES
dc.subject PEDOT:PSS es_ES
dc.subject Large-size cations es_ES
dc.subject OECT. es_ES
dc.subject.classification MAQUINAS Y MOTORES TERMICOS es_ES
dc.subject.classification TECNOLOGIA ELECTRONICA es_ES
dc.title Characterization of Screen-Printed Organic Electrochemical Transistors to Detect Cations of Different Sizes es_ES
dc.type Artículo es_ES
dc.identifier.doi 10.3390/s16101599
dc.relation.projectID info:eu-repo/grantAgreement/MINECO//MAT2015-64139-C4-3-R/ES/DESARROLLO DE EQUIPOS Y DISPOSITIVOS ELECTRONICOS COMO SISTEMA DE DETECCION Y ACTUACION BASADOS EN NUEVAS TECNOLOGIAS ELECTRONICAS. APLICACION AL AREA BIOMEDICA./ es_ES
dc.relation.projectID info:eu-repo/grantAgreement/GVA//AICO%2F2015%2F103/ es_ES
dc.rights.accessRights Abierto es_ES
dc.contributor.affiliation Universitat Politècnica de València. Escuela Técnica Superior de Ingeniería del Diseño - Escola Tècnica Superior d'Enginyeria del Disseny es_ES
dc.contributor.affiliation Universitat Politècnica de València. Escuela Técnica Superior de Ingenieros de Telecomunicación - Escola Tècnica Superior d'Enginyers de Telecomunicació es_ES
dc.description.bibliographicCitation Contat-Rodrigo, L.; Pérez Fuster, C.; Lidon-Roger, JV.; Bonfiglio, A.; Garcia-Breijo, E. (2016). Characterization of Screen-Printed Organic Electrochemical Transistors to Detect Cations of Different Sizes. Sensors. 16(10). https://doi.org/10.3390/s16101599 es_ES
dc.description.accrualMethod S es_ES
dc.relation.publisherversion http://dx.doi.org/10.3390/s16101599 es_ES
dc.description.upvformatpinicio 1599 es_ES
dc.type.version info:eu-repo/semantics/publishedVersion es_ES
dc.description.volume 16 es_ES
dc.description.issue 10 es_ES
dc.relation.senia 320005 es_ES
dc.identifier.eissn 1424-8220
dc.identifier.pmid 27690032 en_EN
dc.identifier.pmcid PMC5087388 en_EN
dc.contributor.funder Ministerio de Economía y Competitividad
dc.contributor.funder Generalitat Valenciana
dc.description.references Shirakawa, H., Louis, E. J., MacDiarmid, A. G., Chiang, C. K., & Heeger, A. J. (1977). Synthesis of electrically conducting organic polymers: halogen derivatives of polyacetylene, (CH) x. Journal of the Chemical Society, Chemical Communications, (16), 578. doi:10.1039/c39770000578 es_ES
dc.description.references Chiang, C. K., Fincher, C. R., Park, Y. W., Heeger, A. J., Shirakawa, H., Louis, E. J., … MacDiarmid, A. G. (1977). Electrical Conductivity in Doped Polyacetylene. Physical Review Letters, 39(17), 1098-1101. doi:10.1103/physrevlett.39.1098 es_ES
dc.description.references Malliaras, G., & Friend, R. (2005). An Organic Electronics Primer. Physics Today, 58(5), 53-58. doi:10.1063/1.1995748 es_ES
dc.description.references D’Andrade, B. W., & Forrest, S. R. (2004). White Organic Light-Emitting Devices for Solid-State Lighting. Advanced Materials, 16(18), 1585-1595. doi:10.1002/adma.200400684 es_ES
dc.description.references Li, G., Shrotriya, V., Huang, J., Yao, Y., Moriarty, T., Emery, K., & Yang, Y. (2005). High-efficiency solution processable polymer photovoltaic cells by self-organization of polymer blends. Nature Materials, 4(11), 864-868. doi:10.1038/nmat1500 es_ES
dc.description.references Dimitrakopoulos, C. D., & Malenfant, P. R. L. (2002). Organic Thin Film Transistors for Large Area Electronics. Advanced Materials, 14(2), 99-117. doi:10.1002/1521-4095(20020116)14:2<99::aid-adma99>3.0.co;2-9 es_ES
dc.description.references Guo, Y., Yu, G., & Liu, Y. (2010). Functional Organic Field-Effect Transistors. Advanced Materials, 22(40), 4427-4447. doi:10.1002/adma.201000740 es_ES
dc.description.references Lin, P., & Yan, F. (2011). Organic Thin-Film Transistors for Chemical and Biological Sensing. Advanced Materials, 24(1), 34-51. doi:10.1002/adma.201103334 es_ES
dc.description.references Mabeck, J. T., & Malliaras, G. G. (2005). Chemical and biological sensors based on organic thin-film transistors. Analytical and Bioanalytical Chemistry, 384(2), 343-353. doi:10.1007/s00216-005-3390-2 es_ES
dc.description.references White, H. S., Kittlesen, G. P., & Wrighton, M. S. (1984). Chemical derivatization of an array of three gold microelectrodes with polypyrrole: fabrication of a molecule-based transistor. Journal of the American Chemical Society, 106(18), 5375-5377. doi:10.1021/ja00330a070 es_ES
dc.description.references Groenendaal, L., Jonas, F., Freitag, D., Pielartzik, H., & Reynolds, J. R. (2000). Poly(3,4-ethylenedioxythiophene) and Its Derivatives: Past, Present, and Future. Advanced Materials, 12(7), 481-494. doi:10.1002/(sici)1521-4095(200004)12:7<481::aid-adma481>3.0.co;2-c es_ES
dc.description.references Kirchmeyer, S., & Reuter, K. (2005). Scientific importance, properties and growing applications of poly(3,4-ethylenedioxythiophene). Journal of Materials Chemistry, 15(21), 2077. doi:10.1039/b417803n es_ES
dc.description.references Nilsson, D. (2002). An all-organic sensor–transistor based on a novel electrochemical transducer concept printed electrochemical sensors on paper. Sensors and Actuators B: Chemical, 86(2-3), 193-197. doi:10.1016/s0925-4005(02)00170-3 es_ES
dc.description.references Andersson, P., Nilsson, D., Svensson, P.-O., Chen, M., Malmström, A., Remonen, T., … Berggren, M. (2002). Active Matrix Displays Based on All-Organic Electrochemical Smart Pixels Printed on Paper. Advanced Materials, 14(20), 1460-1464. doi:10.1002/1521-4095(20021016)14:20<1460::aid-adma1460>3.0.co;2-s es_ES
dc.description.references Basiricò, L., Cosseddu, P., Scidà, A., Fraboni, B., Malliaras, G. G., & Bonfiglio, A. (2012). Electrical characteristics of ink-jet printed, all-polymer electrochemical transistors. Organic Electronics, 13(2), 244-248. doi:10.1016/j.orgel.2011.11.010 es_ES
dc.description.references Bernards, D. A., & Malliaras, G. G. (2007). Steady-State and Transient Behavior of Organic Electrochemical Transistors. Advanced Functional Materials, 17(17), 3538-3544. doi:10.1002/adfm.200601239 es_ES
dc.description.references Nikolou, M., & Malliaras, G. G. (2008). Applications of poly(3,4-ethylenedioxythiophene) doped with poly(styrene sulfonic acid) transistors in chemical and biological sensors. The Chemical Record, 8(1), 13-22. doi:10.1002/tcr.20133 es_ES
dc.description.references Nilsson, D., Robinson, N., Berggren, M., & Forchheimer, R. (2005). Electrochemical Logic Circuits. Advanced Materials, 17(3), 353-358. doi:10.1002/adma.200401273 es_ES
dc.description.references Lin, P., Yan, F., & Chan, H. L. W. (2010). Ion-Sensitive Properties of Organic Electrochemical Transistors. ACS Applied Materials & Interfaces, 2(6), 1637-1641. doi:10.1021/am100154e es_ES
dc.description.references Stavrinidou, E., Leleux, P., Rajaona, H., Khodagholy, D., Rivnay, J., Lindau, M., … Malliaras, G. G. (2013). Direct Measurement of Ion Mobility in a Conducting Polymer. Advanced Materials, 25(32), 4488-4493. doi:10.1002/adma.201301240 es_ES
dc.description.references Cicoira, F., Sessolo, M., Yaghmazadeh, O., DeFranco, J. A., Yang, S. Y., & Malliaras, G. G. (2009). Influence of Device Geometry on Sensor Characteristics of Planar Organic Electrochemical Transistors. Advanced Materials, 22(9), 1012-1016. doi:10.1002/adma.200902329 es_ES
dc.description.references Yaghmazadeh, O., Cicoira, F., Bernards, D. A., Yang, S. Y., Bonnassieux, Y., & Malliaras, G. G. (2010). Optimization of organic electrochemical transistors for sensor applications. Journal of Polymer Science Part B: Polymer Physics, 49(1), 34-39. doi:10.1002/polb.22129 es_ES
dc.description.references Demelas, M., Scavetta, E., Basiricò, L., Rogani, R., & Bonfiglio, A. (2013). A deeper insight into the operation regime of all-polymeric electrochemical transistors. Applied Physics Letters, 102(19), 193301. doi:10.1063/1.4804423 es_ES
dc.description.references Hütter, P. C., Rothländer, T., Haase, A., Trimmel, G., & Stadlober, B. (2013). Influence of geometry variations on the response of organic electrochemical transistors. Applied Physics Letters, 103(4), 043308. doi:10.1063/1.4816781 es_ES
dc.description.references Tarabella, G., Santato, C., Yang, S. Y., Iannotta, S., Malliaras, G. G., & Cicoira, F. (2010). Effect of the gate electrode on the response of organic electrochemical transistors. Applied Physics Letters, 97(12), 123304. doi:10.1063/1.3491216 es_ES
dc.description.references Khodagholy, D., Rivnay, J., Sessolo, M., Gurfinkel, M., Leleux, P., Jimison, L. H., … Malliaras, G. G. (2013). High transconductance organic electrochemical transistors. Nature Communications, 4(1). doi:10.1038/ncomms3133 es_ES


Este ítem aparece en la(s) siguiente(s) colección(ones)

Mostrar el registro sencillo del ítem