arXiv · 1806.02223
Self-Assembled Photochromic Molecular Dipoles for High Performance Polymer Thin-Film Transistors
Abstract
The development of high-performance multifunctional polymer-based electronic circuits is a major step towards future flexible electronics. Here, we demonstrate a tunable approach to fabricate such devices based on rationally designed dielectric super-lattice structures with photochromic azo-benzene molecules. These nanodielectrics possessing ionic, molecular, and atomic polarization are utilized in polymer thin-film transistors (TFTs) to realize high performance electronics with p-type field-effect mobility exceeding 2 cm^2/(V.s). A crossover in the transport mechanism from electrostatic dipolar disorder to ionic-induced disorder is observed in the transistor characteristics over a range of temperatures. The facile supramolecular design allows the possibility to optically control the extent of molecular and ionic polarization in the ultra-thin nanodielectric. Thus, we demonstrate a three-fold increase in the capacitance from 0.1 uF/cm^2 to 0.34 uF/cm^2, which results in a 200% increase in TFT channel current.
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Satyaprasad P. Senanayak, Vinod K. Sangwan, Julian J. McMorrow, Ken Everaerts, Zhihua Chen, Antonio Facchetti, Mark C. Hersam, Tobin J. Marks, K. S. Narayan. 2018-06-06. Self-Assembled Photochromic Molecular Dipoles for High Performance Polymer Thin-Film Transistors. https://doi.org/10.1021/acsami.8b05401
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