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首页> 外文期刊>ACS nano >Correlating Structure and Photocurrent for Composite Semiconducting Nanoparticles with Contrast Variation Small-Angle Neutron Scattering and Photoconductive Atomic Force Microscopy
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Correlating Structure and Photocurrent for Composite Semiconducting Nanoparticles with Contrast Variation Small-Angle Neutron Scattering and Photoconductive Atomic Force Microscopy

机译:小角度中子散射和光电导原子力显微镜对比变化的复合半导体纳米粒子的结构和光电流

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Aqueous dispersions of semiconducting nanoparticles have shown promise as a robust and scalable platform for the production of efficient polymer/ fullerene active layers in organic photovoltaic applications. Semiconducting nanoparticles are a composite of both an n-type and p-type semiconductor contained within a single nanoparticle. In order to realize efficient organic solar cells from these materials, there is a need to understand how the size and internal distribution of materials within each nanoparticle contributes to photocurrent generation in a nanoparticle-derived device. Therefore, characterizing the internal distribution of conjugated polymer and fullerene within the dispersion is the first step to improving performance. To date, study of polymer/fullerene structure within these nanoparticles has been limited to microscopy techniques of deposited nanoparticles. In this work, we use contrast variation with small-angle neutron scattering to determine the internal distribution of poly(3-hexylthiophene) and [6,6]phenyl-C61-butyric acid methyl ester inside the composite nanoparticles as a function of formulation while in dispersion. On the basis of these measurements, we connect the formulation of these nanoparticles with their internal structure. Using electrostatic deposited monolayers of these nanoparticles, we characterize intrinsic charge generation using photoconductive atomic force microscopy and correlate this with structures determined from small-angle neutron scattering measurements. These techniques combined show that the best performing composite nanoparticles are those that have a uniform distribution of conjugated polymer and fullerene throughout the nanoparticle volume such that electrons and holes are easily transported out of the particle.
机译:半导体纳米颗粒的水分散体已显示出其作为用于有机光伏应用中生产高效聚合物/富勒烯活性层的强大且可扩展的平台的希望。半导体纳米粒子是包含在单个纳米粒子中的n型和p型半导体的复合物。为了由这些材料实现有效的有机太阳能电池,需要理解每个纳米颗粒内的材料的尺寸和内部分布如何对源自纳米颗粒的装置中的光电流产生做出贡献。因此,表征分散体中共轭聚合物和富勒烯的内部分布是提高性能的第一步。迄今为止,对这些纳米颗粒内的聚合物/富勒烯结构的研究仅限于沉积纳米颗粒的显微技术。在这项工作中,我们使用具有小角度中子散射的对比度变化来确定复合纳米粒子内部的聚(3-己基噻吩)和[6,6]苯基-C61-丁酸甲酯的内部分布随配方的变化,而在分散。基于这些测量,我们将这些纳米颗粒的配方与其内部结构联系起来。使用这些纳米粒子的静电沉积单层,我们利用光电导原子力显微镜表征了固有电荷的产生,并将其与由小角度中子散射测量确定的结构相关联。这些技术的组合表明,性能最好的复合纳米颗粒是在整个纳米颗粒体积内共轭聚合物和富勒烯具有均匀分布的纳米颗粒,因此电子和空穴很容易从颗粒中运出。

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