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**译文**: **二氧化锰纳米颗粒作为一种新型 p 型掺杂剂用于高性能聚合物场效应晶体管**。

Manganese Oxide Nanoparticle as a New p-Type Dopant for High-Performance Polymer Field-Effect Transistors.

机构信息

Department of Energy and Materials Engineering, Dongguk University , 30 Pildong-ro, 1-gil, Jung-gu, Seoul 04620, Republic of Korea.

Korea Atomic Energy Research Institute , Daedoek-daero 989-111, Yuseong-gu, Daejeon 34057, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2017 Jul 26;9(29):24763-24770. doi: 10.1021/acsami.7b04729. Epub 2017 Jul 11.

Abstract

We report a new p-type dopant, manganese oxide (MnO) nanoparticle, to enhance the performance of organic field-effect transistors (OFETs) with conjugated polymers, including poly(3-hexylthiophene-2,5-diyl), poly[[N,N 9-bis(2-octyldodecyl)-naphthalene-1,4,5,8-bis(dicarboximide)-2,6-diyl]-alt-5,59-(2,29-bithiophene)], and poly[[2,5-bis(2-octyldodecyl)-2,3,5,6-tetrahydro-3,6-dioxopyrrolo[3,4-c]pyrrole-1,4-diyl]-alt-[[2,2'-(2,5-thiophene)bis-thieno(3,2b) thiophene]-5,5'-diyl]] (DPPT-TT). Incorporating a small amount of MnO nanoparticles in the semiconductor film significantly improved the hole mobility and decreased the threshold voltage for all OFETs, indicating efficient MnO nanoparticle p-type doping. The MnO nanoparticle showed a better doping efficiency than the widely used FeCl dopant due to better mixability with the host conjugated polymers. In particular, doped DPPT-TT OFETs showed significantly improved mobility up to 2.35 (±0.4) cm/(V·s) with enhanced air and operational stability at 0.1 wt % doping concentration from 1.2 cm/(V·s) for pristine devices.

摘要

我们报告了一种新型的 p 型掺杂剂,氧化锰(MnO)纳米粒子,用于提高与共轭聚合物的有机场效应晶体管(OFET)的性能,包括聚(3-己基噻吩-2,5-二基),聚[[N,N 9-双(2-辛基十二烷基)-萘-1,4,5,8-双(二羧酸二酰亚胺)-2,6-二基]-交替-5,59-(2,29-噻吩)],和聚[[2,5-双(2-辛基十二烷基)-2,3,5,6-四氢-3,6-二氧代吡咯并[3,4-c]吡咯-1,4-二基]-交替-[[2,2'-(2,5-噻吩)双噻吩(3,2b)噻吩]-5,5'-二基]](DPPT-TT)。在半导体薄膜中掺入少量的 MnO 纳米粒子显著提高了空穴迁移率,并降低了所有 OFET 的阈值电压,表明 MnO 纳米粒子具有有效的 p 型掺杂作用。MnO 纳米粒子比常用的 FeCl 掺杂剂具有更好的掺杂效率,因为它与主体共轭聚合物具有更好的混合性。特别是,掺杂 DPPT-TT 的 OFET 表现出明显改善的迁移率,高达 2.35(±0.4)cm/(V·s),并在 0.1wt%掺杂浓度下具有增强的空气稳定性和操作稳定性,比原始器件的 1.2cm/(V·s)提高了。

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