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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >The impact of molecular planarity on electronic devices in thienoisoindigo-based organic semiconductors
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The impact of molecular planarity on electronic devices in thienoisoindigo-based organic semiconductors

机译:硫代异靛蓝基有机半导体中分子平面度对电子器件的影响

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摘要

The influence of molecular planarity on field- effect- transistor and photovoltaic cell performance in thienoisoindigo derivatives has been studied. Thienoisoindigo derivatives end- capped with benzothiophene TII(SB)(2) and benzofuran TII(OB)(2) together with benzothiophene-capped isoindigo II(SB)(2) are prepared, and their electronic properties are investigated. The crystal structures of TII(SB)(2) and TII(OB)(2) are determined by single-crystal X-ray structure analyses. The redox and optical measurements as well as the molecular orbital calculation indicate that thienoisoindigo-based molecules TII(SB)(2) and TII(OB)(2) have higher HOMO levels and smaller band gaps than II(SB)(2). The single-crystal structure analysis reveals that TII(SB)(2) and TII(OB)(2) have flat form, agreeing well with the structure optimized by the density functional theory (DFT) calculation, and TII(SB)(2) and TII(OB)(2) form slipped one-dimensional stacks with the alkyl chains extending out of the molecular plane. As an active layer of organic fieldeffect transistors, TII(SB)(2) and TII(OB)(2) show one order of magnitude larger p-type carrier mobility than that of II(SB)(2). It is noted that TII(SB)(2) and TII(OB)(2) fabricated on a tetratetracontane (TTC) modified substrate show balanced ambipolar properties (mu(h) approximate to mu(e) approximate to 10(-2) cm(2) V (-1) s (-1)), where the carrier balance comes from well delocalized frontier molecular orbitals (FMOs). The photovoltaic properties of TII(SB)(2), TII(OB)(2), and II(SB)(2) are investigated in bulk heterojunction devices using PC71BM. The devices show a photovoltaic efficiency up to 2.4% for TII(OB)(2) and 1.4% for TII(SB)(2). The device performance is closely associated with the flat structure of the thienoisoindigo unit, which effectively minimizes the steric interference of the benzothiophene and benzofuran units to facilitate the slipped co-facial pi-pi stacking.
机译:研究了硫代异靛蓝衍生物中分子平面度对场效应晶体管和光伏电池性能的影响。制备了以苯并噻吩TII(SB)(2)和苯并呋喃TII(OB)(2)封端的噻吩并靛蓝衍生物以及苯并噻吩封端的异靛蓝II(SB)(2),并研究了它们的电子性质。通过单晶X射线结构分析来确定TII(SB)(2)和TII(OB)(2)的晶体结构。氧化还原和光学测量以及分子轨道计算表明,基于硫异靛蓝的分子TII(SB)(2)和TII(OB)(2)比II(SB)(2)具有更高的HOMO水平和更小的带隙。单晶结构分析表明,TII(SB)(2)和TII(OB)(2)具有扁平形式,与通过密度泛函理论(DFT)计算和TII(SB)(2)优化的结构非常吻合。 )和TII(OB)(2)形成滑移的一维堆栈,烷基链延伸出分子平面。作为有机场效应晶体管的有源层,TII(SB)(2)和TII(OB)(2)的p型载流子迁移率比II(SB)(2)大一个数量级。应当指出,在四四烷(TTC)修饰的基材上制造的TII(SB)(2)和TII(OB)(2)显示出平衡的双极性特性(mu(h)近似于mu(e)近似于10(-2) cm(2)V(-1)s(-1)),其中载流子平衡来自良好定域的前沿分子轨道(FMO)。使用PC71BM在体异质结器件中研究了TII(SB)(2),TII(OB)(2)和II(SB)(2)的光电性能。该设备显示TII(OB)(2)的光伏效率高达2.4%,TII(SB)(2)的光伏效率高达1.4%。器件性能与硫代异靛蓝单元的平坦结构密切相关,从而有效地减小了苯并噻吩和苯并呋喃单元的空间干扰,从而促进了滑动共面pi-pi堆叠。

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