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Long-Range Order in Nanocrystal Assemblies Determines Charge Transport of Films

机译:纳米晶体组件中的远距离有序决定了薄膜的电荷传输

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Self-assembly of semiconductor nanocrystals (NCs) into two-dimensional patterns or three-dimensional (2-3D) superstructures has emerged as a promising low-cost route to generate thin-film transistors and solar cells with superior charge transport because of enhanced electronic coupling between the NCs. Here, we show that lead sulfide (PbS) NCs solids featuring either short-range (disordered glassy solids, GSs) or long-range (superlattices, SLs) packing order are obtained solely by controlling deposition conditions of colloidal solution of NCs. In this study, we demonstrate the use of the evaporation-driven self-assembly method results in PbS NC SL structures that are observed over an area of 1 mm × 100 μm, with long-range translational order of up to 100 nm. A number of ordered domains appear to have nucleated simultaneously and grown together over the whole area, imparting a polycrystalline texture to the 3D SL films. By contrast, a conventional, optimized spin-coating deposition method results in PbS NC glassy films with no translational symmetry and much shorter-range packing order in agreement with state-of-the-art reports. Further, we investigate the electronic properties of both SL and GS films, using a field-effect transistor configuration as a test platform. The long-range ordering of the PbS NCs into SLs leads to semiconducting NC-based solids, the mobility (μ) of which is 3 orders of magnitude higher than that of the disordered GSs. Moreover, although spin-cast GSs of PbS NCs have weak ambipolar behavior with limited gate tunability, SLs of PbS NCs show a clear p-type behavior with significantly higher conductivities.
机译:将半导体纳米晶体(NCs)自组装成二维图案或三维(2-3D)上层结构已经成为一种有前途的低成本途径,因为增强了电子性能,该薄膜可以产生具有优异电荷传输的薄膜晶体管和太阳能电池NC之间的耦合。在这里,我们表明,仅通过控制NC胶体溶液的沉积条件,即可获得具有短程(无序玻璃状固体,GSs)或长程(超晶格,SLs)堆积顺序的硫化铅(PbS)NCs固体。在这项研究中,我们证明了蒸发驱动自组装方法在PbS NC SL结构中的使用结果,该结构在1 mm×100μm的区域内观察到,具有高达100 nm的远距离平移顺序。许多有序域似乎已同时成核并在整个区域中一起生长,从而为3D SL膜赋予了多晶织构。相比之下,传统的,优化的旋涂沉积方法会导致PbS NC玻璃状薄膜没有平移对称性,并且短程堆积顺序与最新技术相一致。此外,我们使用场效应晶体管配置作为测试平台来研究SL和GS膜的电子性能。 PbS NCs到SLs中的远距离排序导致了基于NC的半导体固体,其迁移率(μ)比无序GSs高3个数量级。此外,尽管PbS NC的自旋浇铸GS具有弱的双极性行为,且栅极可调性有限,但是PbS NC的SL具有清晰的p型行为,电导率明显更高。

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