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基于DPP的供体-受体共聚物中用于高性能离子电子学的分子杂交传导

Molecularly Hybridized Conduction in DPP-Based Donor-Acceptor Copolymers toward High-Performance Iono-Electronics.

作者信息

Samal Sanket, Roh Heejung, Cunin Camille E, Yang Geon Gug, Gumyusenge Aristide

机构信息

Massachusetts Institute of Technology, Department of Materials Science & Engineering, 77 Massachusetts Ave, Cambridge, MA, 02139, USA.

Korea Advanced Institute of Science & Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon, 34141, South Korea.

出版信息

Small. 2023 May;19(18):e2207554. doi: 10.1002/smll.202207554. Epub 2023 Feb 3.

Abstract

Iono-electronics, that is, transducing devices able to translate ionic injection into electrical output, continue to demand a variety of mixed ionic-electronic conductors (MIECs). Though polar sidechains are widely used in designing novel polymer MIECs, it remains unclear to chemists how much balance is needed between the two antagonistic modes of transport (ion permeability and electronic charge transport) to yield high-performance materials. Here, the impact of molecularly hybridizing ion permeability and charge mobility in semiconducting polymers on their performance in electrochemical and synaptic transistors is investigated. A series of diketopyrrolopyrrole (DPP)-based copolymers are employed to demonstrate the multifunctionality attained by controlling the density of polar sidechains along the backbone. Notably, efficient electrochemical signal transduction and reliable synaptic plasticity are demonstrated via controlled ion insertion and retention. The newly designed DPP-based copolymers further demonstrate unprecedented thermal tolerance among organic mixed ionic-electronic conductors, a key property in the manufacturing of organic electronics.

摘要

离子电子学,即能够将离子注入转化为电输出的传感装置,持续需要各种混合离子电子导体(MIEC)。尽管极性侧链在设计新型聚合物MIEC中被广泛使用,但化学家们仍不清楚在两种相互拮抗的传输模式(离子渗透性和电子电荷传输)之间需要多少平衡才能产生高性能材料。在此,研究了半导体聚合物中离子渗透性和电荷迁移率的分子杂交对其在电化学晶体管和突触晶体管中的性能的影响。采用一系列基于二酮吡咯并吡咯(DPP)的共聚物来证明通过控制主链上极性侧链的密度所实现的多功能性。值得注意的是,通过可控的离子插入和保留,展示了高效的电化学信号转导和可靠的突触可塑性。新设计的基于DPP的共聚物进一步证明了有机混合离子电子导体中前所未有的耐热性,这是有机电子制造中的一项关键特性。

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