Artie McFerrin Department of Chemical Engineering and Department of Materials Science and Engineering, T, exas A&M University, 3122 TAMU, College Station, TX, 77843-3122, USA.
Angew Chem Int Ed Engl. 2017 Aug 7;56(33):9856-9859. doi: 10.1002/anie.201705204. Epub 2017 Jul 19.
Nitroxide-containing organic radical polymers (ORPs) have captured attention for their high power and fast redox kinetics. Yet a major challenge is the polymer's aliphatic backbone, resulting in a low electronic conductivity. Recent attempts that replace the aliphatic backbone with a conjugated one have not met with success. The reason for this is not understood until now. We examine a family of polythiophenes bearing nitroxide radical groups, showing that while both species are electrochemically active, there exists an internal electron transfer mechanism that interferes with stabilization of the polymer's fully oxidized form. This finding directs the future design of conjugated radical polymers in energy storage and electronics, where careful attention to the redox potential of the backbone relative to the organic radical species is needed.
含氮氧化物的有机自由基聚合物 (ORP) 因其高功率和快速氧化还原动力学而引起关注。然而,一个主要的挑战是聚合物的脂肪族主链,导致其电子电导率低。最近尝试用共轭主链取代脂肪族主链的尝试并没有成功。直到现在,人们还不了解其中的原因。我们研究了一系列带有氮氧化物自由基基团的聚噻吩,结果表明,虽然这两种物质都具有电化学活性,但存在一种内部电子转移机制,干扰了聚合物完全氧化形式的稳定。这一发现为储能和电子领域中共轭自由基聚合物的未来设计指明了方向,在这些领域中,需要仔细注意主链相对于有机自由基的氧化还原电位。