A. Dodabalapur
Agency for Science, Technology and Research
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Publication
Featured researches published by A. Dodabalapur.
Journal of Materials Chemistry | 2011
Prashant Sonar; Evan L. Williams; Samarendra P. Singh; A. Dodabalapur
New push-pull copolymers based on thiophene (donor) and benzothiadiazole (acceptor) units, poly[4,7-bis(3-dodecylthiophene-2-yl) benzothiadiazole-co- thiophene] (PT3B1) and poly[4,7-bis(3-dodecylthiophene-2-yl) benzothiadiazole-co-benzothiadiazole] (PT2B2), are designed and synthesized via Stille and Suzuki coupling routes respectively. Gel permeation chromatography shows the number average molecular weights are 31100 and 8400 g mol-1 for the two polymers, respectively. Both polymers have shown absorption throughout a wide range of the UV-vis region, from 300 to 650 nm. A significant red shift of the absorption edge is observed in thin films compared to solution of the copolymers; the optical band gap is in the range of 1.7 to 1.8 eV. Cyclic voltammetry indicates reversible oxidation and reduction processes with HOMO energy levels calculated to be in the range of 5.2 to 5.4 eV. Upon testing both materials for organic field-effect transistors (OFETs), PT3B1 showed a hole mobility of 6.1 × 10-4 cm2 V-1 s -1, while PT2B2 did not show any field effect transport. Both copolymers displayed a photovoltaic response when combined with a methanofullerene as an electron acceptor. The best performance was achieved when the copolymer PT3B1 was blended with [70]PCBM in a 1:4 ratio, exhibiting a short-circuit current of 7.27 mA cm-2, an open circuit voltage of 0.85 V, and a fill factor of 41% yielding a power conversion efficiency of 2.54% under simulated air mass (AM) 1.5 global (1.5 G) illumination conditions (100 mW cm-2). Similar devices utilizing PT2B2 in place of PT3B1 demonstrated reduced performance with a short-circuit current of 4.8 mA cm -2, an open circuit voltage of 0.73 V, and a fill factor of 30% resulting in a power conversion efficiency of roughly 1.06%.
Applied Physics Letters | 2009
Samarendra P. Singh; Prashant Sonar; Alan Sellinger; A. Dodabalapur
We describe and discuss the unique electrical characteristics of an organic field-effect transistor in which the active layer consists of a type II lateral heterojunction located approximately midway between the source and drain. The two active semiconductors on either side of the junction transport only one carrier type each, with the other becoming trapped, which leads to devices that operate in only the steady state when there is balanced electron and hole injections from the drain and source. We describe the unique transfer characteristics of such devices in two material systems.
Frontiers in Optics 2007/Laser Science XXIII/Organic Materials and Devices for Displays and Energy Conversion (2007), paper OWB2 | 2007
Thomas Kietzke; Lawrence Dunn; Richard Yee Cheong Shin; Teck Lip Dexter Tam; Zhi Kuan Chen; A. Dodabalapur; Alan Sellinger
Novel electron accepting materials based on 2-vinyl-4,5-dicyanoimidazoles (DCI) are blended with donor polymers to prepare efficient organic solar cells reaching external quantum efficiencies of 25% and open circuit voltages up to 1.3 V.
Journal of Physical Chemistry C | 2013
H. Glowatzki; Prashant Sonar; Samarendra P. Singh; A. M. Mak; Michael B. Sullivan; Wei Chen; Andrew Thye Shen Wee; A. Dodabalapur
Science & Engineering Faculty | 2010
Prashant Sonar; Ging-Meng Ng; Tingting Lin; A. Dodabalapur; Zhi Kuan Chen
Science & Engineering Faculty | 2013
Tae-Jun Ha; Prashant Sonar; A. Dodabalapur
Science & Engineering Faculty | 2012
Tae-Jun Ha; Prashant Sonar; Brian Cobb; A. Dodabalapur
Science & Engineering Faculty | 2011
William Kylberg; Prashant Sonar; Jakob Heier; Jean-Nicolas Tisserant; Christian Müller; Frank Nüesch; Zhi Kuan Chen; A. Dodabalapur; Songhak Yoon; Roland Hany
Archive | 2011
Davianne Duarte; Brian Cobb; A. Dodabalapur
Science & Engineering Faculty | 2009
Prashant Sonar; Samarendra P. Singh; Philippe Leclère; Mathieu Surin; Roberto Lazzaroni; Tingting Lin; A. Dodabalapur; Alan Sellinger