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Correlation of nanoscale organizations of polymer and nanocrystals in polymer/inorganic nanocrystal bulk heterojunction hybrid solar cells: insights from multiscale molecular simulations

机译:聚合物/无机纳米晶体本体异质结混合太阳能电池中聚合物和纳米晶体的纳米级组织的相关性:多尺度分子模拟的见解

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摘要

A comprehensive insight into the correlations of the nanoscale organizations of polymer and nanocrystals in polymer/inorganic nanocrystal bulk heterojunction (BHJ) hybrid solar cells is the key toward nanomorphology control for improving device performance. In this study, we investigated the organizations of both the polymer and nanocrystals in polymer/inorganic nanocrystal hybrid solar cells by performing multiscale molecular simulations of P3HT:TiO_2 nanocrystal BHJs incorporating nanocrystals with two different dimensionalities, namely, zero-dimensional nanoparticles (NPs), and one-dimensional nanorods (NRs). We reveal that nanocrystal dimensionality has significant impacts on the polymeranocrystal organizations for polymer/inorganic nanocrystal hybrid blends. One-dimensional nanocrystals, such as TiO_2 NRs, can effectively enhance the polymer degree of crystallinity as a result of preferential polymer chain alignment along the axial dimension of the NRs, thereby promoting hole transport; in addition, the elongated, anisotropic NRs significantly reduce the probability of electron hopping, and maintain a high specific interfacial area for efficient exciton dissociation. Therefore, the present study demonstrates the possibility of the nanoscale morphology control of polymer/inorganic nanocrystal BHJ hybrid blends via tuning the nanocrystal shapes, which is potentially helpful for developing next-generation polymer/inorganic nanocrystal hybrid electronic devices such as solar cells or thin film transistors.
机译:全面了解聚合物/无机纳米晶体本体异质结(BHJ)混合太阳能电池中聚合物和纳米晶体的纳米级组织之间的相关性是控制纳米形态以改善器件性能的关键。在这项研究中,我们通过对P3HT:TiO_2纳米晶体BHJ进行了多尺度分子模拟,研究了二维/二维纳米颗粒(NPs),零维纳米颗粒(NPs),聚合物/无机纳米晶体混合太阳能电池中聚合物和纳米晶体的组织,和一维纳米棒(NRs)。我们揭示了纳米晶体的尺寸对聚合物/无机纳米晶体杂化共混物的聚合物/纳米晶体组织具有重大影响。一维纳米晶体(例如TiO_2 NRs)可以有效地提高聚合物的结晶度,这是由于沿NRs轴向尺寸优先进行的聚合物链排列,从而促进了空穴传输;此外,细长的各向异性NRs显着降低了电子跳跃的可能性,并保持了高比界面面积,可进行有效的激子离解。因此,本研究证明了通过调节纳米晶体的形状来控制聚合物/无机纳米晶体BHJ杂化混合物的纳米级形态的可能性,这对于开发下一代聚合物/无机纳米晶体杂化电子器件(例如太阳能电池或薄膜)具有潜在的帮助晶体管。

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  • 来源
    《Energy & environmental science》 |2013年第1期|307-315|共9页
  • 作者单位

    Research Center for Applied Sciences, Academia Sinica, 128 Sec. 2 Academia Rd.,Taipei 11529, Taiwan;

    Research Center for Applied Sciences, Academia Sinica, 128 Sec. 2 Academia Rd.,Taipei 11529, Taiwan;

    Department of Materials Science and Engineering, National Taiwan University,Taipei, Taiwan;

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