侧链
材料科学
聚合物
奥斯特瓦尔德成熟
乙二醇
三甘醇
分子动力学
化学物理
电解质
烷基
聚噻吩
层状结构
化学工程
结晶学
高分子化学
纳米技术
化学
有机化学
计算化学
导电聚合物
电极
物理化学
工程类
复合材料
作者
Nicholas Siemons,Drew Pearce,Camila Cendra,Hang Yu,Sachetan M. Tuladhar,Rawad K. Hallani,Rajendar Sheelamanthula,Garrett LeCroy,Lucas Siemons,Andrew J. P. White,Iain McCulloch,Alberto Salleo,Jarvist M. Frost,Alexander Giovannitti,Jenny Nelson
标识
DOI:10.1002/adma.202204258
摘要
Exchanging hydrophobic alkyl-based side chains to hydrophilic glycol-based side chains is a widely adopted method for improving mixed-transport device performance, despite the impact on solid-state packing and polymer-electrolyte interactions being poorly understood. Presented here is a molecular dynamics (MD) force field for modeling alkoxylated and glycolated polythiophenes. The force field is validated against known packing motifs for their monomer crystals. MD simulations, coupled with X-ray diffraction (XRD), show that alkoxylated polythiophenes will pack with a "tilted stack" and straight interdigitating side chains, whilst their glycolated counterpart will pack with a "deflected stack" and an s-bend side-chain configuration. MD simulations reveal water penetration pathways into the alkoxylated and glycolated crystals-through the π-stack and through the lamellar stack respectively. Finally, the two distinct ways triethylene glycol polymers can bind to cations are revealed, showing the formation of a metastable single bound state, or an energetically deep double bound state, both with a strong side-chain length dependence. The minimum energy pathways for the formation of the chelates are identified, showing the physical process through which cations can bind to one or two side chains of a glycolated polythiophene, with consequences for ion transport in bithiophene semiconductors.
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