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Nanostructured hybrid ZnO@CdS nanowalls grown in situ for inverted polymer solar cells

机译:原位生长用于倒置聚合物太阳能电池的纳米结构杂化ZnO @ CdS纳米壁

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Nanostructured three-dimensional hybrid ZnO@CdS (ZOCS) nanowalls fabricated on indium tin oxide (iTO) glass by in situ growth were explored as an electron transport layer (ETL) for inverted polymer solar cells (PSCs). Photoluminescence (PL), X-ray photoelectron spectroscopy (XPS) and space charge limited current (SCLC) analysis show that the in situ growth of CdS on the surface of ZnO can not only passivate and repair the surface defects of ZnO to offer close contact and an efficient path for electron transport, but also act as a bridge for interfacial charge transfer to enhance the electron selectivity and reduce the recombination probability of electrons and holes, which is favorable for improving the J_(sc) and FF of a device. At the same time, compared to the bare ZnO, the hybrid ZOCS nanowalls show reduced work function and can spread the sunlight inside the active layer to improve the capturing efficiency of photons. The photophysics and electronic properties of the hybrid ZOCS nanowalls strongly depend on the thickness of the CdS layer, and a suitable thickness of the CdS layer improves the power conversion efficiency of inverted PSCs based on P3HT:PCBM from 3.18% for bare ZnO to 4.07% for ZOCS with enhanced J_(sc) and FF. Moreover, the close contact can also prevent oxygen and moisture diffusing into the active layers, which dramatically enhances the environmental stability.
机译:探索通过原位生长在铟锡氧化物(iTO)玻璃上制造的纳米结构三维杂化ZnO @ CdS(ZOCS)纳米壁,作为倒置聚合物太阳能电池(PSC)的电子传输层(ETL)。光致发光(PL),X射线光电子能谱(XPS)和空间电荷限制电流(SCLC)分析表明,CdS在ZnO表面上的原位生长不仅可以钝化并修复ZnO的表面缺陷以提供紧密接触既是电子传输的有效途径,又是界面电荷转移的桥梁,可以提高电子选择性,降低电子与空穴的复合概率,有利于提高器件的J_(sc)和FF。同时,与裸露的ZnO相比,杂化ZOCS纳米壁的功函数降低,并且可以将阳光散布在活性层内部,从而提高了光子的捕获效率。杂化ZOCS纳米壁的光物理性质和电子性质在很大程度上取决于CdS层的厚度,并且适当的CdS层厚度可以将基于P3HT:PCBM的倒置PSC的功率转换效率从裸露的ZnO的3.18%提高到4.07%用于具有增强的J_(sc)和FF的ZOCS。而且,紧密接触还可以防止氧气和水分扩散到活性层中,这大大增强了环境稳定性。

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