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Geometrical Patterning of Super-Hydrophobic Biosensing Transistors Enables Space and Time Resolved Analysis of Biological Mixtures

Authors :
Nicola Coppedè
Salvatore Iannotta
Francesco Gentile
Manuele Bettelli
Andrea Zappettini
Marco Villani
Mario Cesarelli
Enzo Di Fabrizio
Lorenzo Ferrara
Gentile, Francesco
Ferrara, Lorenzo
Villani, Marco
Bettelli, Manuele
Iannotta, Salvatore
Zappettini, Andrea
Cesarelli, Mario
Di Fabrizio, Enzo
Coppedè, Nicola
Source :
Scientific Reports, Scientific reports (Nature Publishing Group) 6 (2016): 18992-1. doi:10.1038/srep18992, info:cnr-pdr/source/autori:Gentile, Francesco; Ferrara, Lorenzo; Villani, Marco; Bettelli, Manuele; Iannotta, Salvatore; Zappettini, Andrea; Cesarelli, Mario; Di Fabrizio, Enzo; Coppedè, Nicola/titolo:Geometrical Patterning of Super-Hydrophobic Biosensing Transistors Enables Space and Time Resolved Analysis of Biological Mixtures/doi:10.1038%2Fsrep18992/rivista:Scientific reports (Nature Publishing Group)/anno:2016/pagina_da:18992-1/pagina_a:/intervallo_pagine:18992-1/volume:6
Publication Year :
2015

Abstract

PEDOT:PSS is a conductive polymer that can be integrated into last generation Organic Electrochemical Transistor (OECT) devices for biological inspection, identification and analysis. While a variety of reports in literature demonstrated the chemical and biological sensitivity of these devices, still their ability in resolving complex mixtures remains controversial. Similar OECT devices display good time dynamics behavior but lack spatial resolution. In this work, we integrated PEDOT:PSS with patterns of super-hydrophobic pillars in which a finite number of those pillars is independently controlled for site-selective measurement of a solution. We obtained a multifunctional, hierarchical OECT device that bridges the micro- to the nano-scales for specific, combined time and space resolved analysis of the sample. Due to super-hydrophobic surface properties, the biological species in the drop are driven by convection, diffusion and the externally applied electric field: the balance/unbalance between these forces will cause the molecules to be transported differently within its volume depending on particle size thus realizing a size-selective separation. Within this framework, the separation and identification of two different molecules, namely Cetyl Trimethyl Ammonium Bromid (CTAB) and adrenaline, in a biological mixture have been demonstrated, showing that geometrical control at the micro-nano scale impart unprecedented selectivity to the devices.

Details

ISSN :
20452322
Volume :
6
Database :
OpenAIRE
Journal :
Scientific reports
Accession number :
edsair.doi.dedup.....ad3a2e0a26ea5a6ffc4849a9bf4799bf
Full Text :
https://doi.org/10.1038/srep18992