聚苯乙烯
驻极体
电介质
材料科学
聚合物
有机场效应晶体管
侧链
纳米技术
俘获
晶体管
分子内力
光电子学
场效应晶体管
电压
化学
有机化学
电气工程
复合材料
工程类
生物
生态学
作者
Yuanwei Zhu,Nan Qiao,Shuqi Dong,Guanghao Qu,Yu Chen,Wanlong Lu,Zongze Qin,Dongfan Li,Kangning Wu,Yongjie Nie,Bo Liu,Shengtao Li,Guanghao Lu
标识
DOI:10.1021/acs.chemmater.2c01252
摘要
The emerging applications of organic field-effect transistors (OFETs), such as photon memories and artificial synapses, require polymer dielectrics with superior charge trapping properties. Despite the introduction of high-k and fluorinated polymers in the performance optimization of OFETs, there is still a lack of widely recognized acknowledgment between molecular structures and charge trapping characteristics, as well as no general principles in designing polymeric dielectrics for electronic memory devices. Here, we propose a series of fluorinated polystyrene isomers through side-chain engineering, namely, ortho-(o-), meta-(m-), and para-fluorinated polystyrene (p-FPS). The gradually enlarged intramolecular charge separation of o-, m-, and p-FPS enhances molecular electrostatic potential, which promotes polarization and charge trapping performances, resulting in an enlarged dielectric constant, as well as more deep traps toward stable electret. Subsequently, largely improved photon memory and artificial synapse performances of p-FPS-based OFETs further suggest the dominating role of dielectric side-chain structures on memory and synapse performances, leading to a recommendation of low-k (εr < 5) dielectric polymers with enhanced electrostatic potential for OFET-based memory devices and bionic nervous systems.
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