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An organosilane self-assembled monolayer incorporated into polymer solar cells enabling interfacial coherence to improve charge transport

机译:有机硅烷自组装单层膜 并入聚合物太阳能电池中 界面相干性以改善电荷传输

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摘要

The reproducible silylation of titanium oxide (TiO2) with small molecular (dichloromethyl) dimethylchlorosilane (DCS) as the cathode buffer layer was developed to improve electron extraction. Through incorporating the DCS capping layer into polymer solar cells (PSCs), the interfacial coherence of devices could be enhanced, leading to a shift in nanocrystallite size and a smaller internal charge transport resistance. Furthermore, a TiO2/DCS combined interfacial layer could serve as both an exciton dissociation center and a charge transfer channel, which results in a reduction in the energy barrier and electron loss, improving hole-blocking and surface-state passivation in the TiO2 interfacial layer. The Kelvin probe measurements demonstrate that the employment of the DCS nanolayer decreases conduction band energy of TiO2 via forming a dipole layer at the interface of TiO2 and the DCS nanolayer, which tunes the work-function of the device and ulteriorly enhances charge carrier transfer between the electrode and the active layer. As a result, the photocurrent and the fill factor of the PSCs are both increased, resulting in an increased power conversion efficiency (PCE) of 6.959%.
机译:开发了以小分子(二氯甲基)二甲基氯硅烷(DCS)作为阴极缓冲层的氧化钛(TiO2)可重现的甲硅烷基化反应,以改善电子的提取。通过将DCS覆盖层合并到聚合物太阳能电池(PSC)中,可以增强器件的界面相干性,从而导致纳米微晶尺寸的变化和内部电荷传输阻力减小。此外,TiO2 / DCS结合界面层既可以用作激子离解中心,又可以用作电荷转移通道,从而降低了能垒和电子损耗,改善了TiO2界面层中的空穴阻挡和表面态钝化。开尔文(Kelvin)探针的测量结果表明,DCS纳米层的使用通过在TiO2和DCS纳米层的界面处形成偶极子层来降低TiO2的导带能量,从而调整了器件的功函数,并进一步增强了电荷转移。电极和有源层。结果,PSC的光电流和填充因子均增加,导致功率转换效率(PCE)增至6.959%。

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