论文标题
副链亲水性对氧气 - 二苯半导体中包装,肿胀和离子相互作用的影响
Impact of Side Chain Hydrophilicity on Packing, Swelling and Ion Interactions in Oxy-bithiophene Semiconductors
论文作者
论文摘要
尽管对固态填料和聚合物 - 电解质相互作用产生了影响,但将疏水性烷基的侧链交换为基于亲水性甘氨酸的侧链是一种广泛采用的改善混合转运装置性能的方法。此处介绍的是一种分子动力学(MD)力场,用于建模烷氧基化和糖溶的聚胆道。针对其单体晶体的已知堆积基序对力场进行了验证。 MD模拟,再加上X射线衍射(XRD),表明烷氧基化的聚胆道将与“倾斜堆栈”一起包装,并直接互构成侧链,而它们的糖化对应物将带有“偏移堆叠式堆栈”和S型侧链链链构造。 MD模拟揭示了通过π -stack和通过层状堆栈分别揭示进入烷氧基化和糖化晶体的渗透途径。最后,三乙二醇聚合物可以与阳离子结合的两种不同的方式,表明形成了元稳定的单个结合状态,或者具有强大的侧链长度依赖性的能量深的双重结合状态。鉴定出形成螯合物的最小能量途径,显示了阳离子可以结合糖化聚噻吩的一个或两个侧链的物理过程,对Bithiophene半导体中的离子转运产生了后果。
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 modelling 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 tri-ethylene glycol polymers can bind to cations are revealed, showing the formation of a meta-stable single bound state, or an energetically deep double bound state, both with a strong side chain length dependance. 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.