| Literature DB >> 27557404 |
Jooyeok Seo1, Myeonghun Song1, Jaehoon Jeong1, Sungho Nam1,2, Inseok Heo3, Soo-Young Park3, Inn-Kyu Kang3, Joon-Hyung Lee4, Hwajeong Kim1,5, Youngkyoo Kim1.
Abstract
We report broadband pH-sensing organic field-effect transistors (OFETs) with the polymer-dispersed liquid crystal (PDLC) sensing layers. The PDLC layers are prepared by spin-coating using ethanol solutions containing 4-cyano-4'-pentyl-biphenyl (5CB) and a diblock copolymer (PAA-b-PCBOA) that consists of LC-philic block [poly(4-cyano-biphenyl-4-oxyundecyl acrylate) (PCBOA)] and acrylic acid block [poly(acrylic acid) (PAA)]. The spin-coated sensing layers feature of 5CB microdomains (<5 μm) encapsulated by the PAA-b-PCBOA polymer chains. The resulting LC-integrated-OFETs (PDLC-i-OFETs) can detect precisely and reproducibly a wide range of pH with only small amounts (10-40 μL) of analyte solutions in both static and dynamic perfusion modes. The positive drain current change is measured for acidic solutions (pH < 7), whereas basic solutions (pH > 7) result in the negative change of drain current. The drain current trend in the present PDLC-i-OFET devices is explained by the shrinking-expanding mechanism of the PAA chains in the diblock copolymer layers.Entities:
Keywords: diblock copolymer; liquid crystal; organic field-effect transistor; pH sensor; perfusion
Year: 2016 PMID: 27557404 DOI: 10.1021/acsami.6b08257
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229