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Interfacial Engineering with Cross-Linkable Fullerene Derivatives for High-Performance Perovskite Solar Cells

机译:具有可交联富勒烯衍生物的界面工程,用于高性能钙钛矿太阳能电池

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Two fullerene derivatives with styryl and oxetane cross-linking groups served as interfacial materials to modify an electron-transporting layer (ETL) of TiO2, doped with Au nanoparticles, processed under low-temperature conditions to improve the performance of perovskite solar cells (PSC). The cross-linkable [6,6]-phenyl-C-61-butyric styryl dendron ester was produced via thermal treatment at 160 degrees C for 20 min, whereas the cross-linkable [6,6]-phenyl-C-61-butyric oxetane dendron ester (C-PCBOD) was obtained via UV-curing treatment for 45 s. Both cross-linked fullerenes can passivate surface-trap states of TiO2 and have also excellent surface coverage on the TiO2 layer shown in the corresponding atomic force microscopy images. To improve the crystallinity of perovskite, we propose a simple co-solvent method involving mixing dimethylformamide (DMF) and dimethyl sulfoxide (DMSO) in a specific ratio (DMF/DMSO = 90/10). The fullerene derivative layer between the ETL and perovskite layers significantly improved electron extraction and suppressed charge recombination by decreasing the density of traps at the ETL surface. A planar PSC device was fabricated with the configuration indium tin oxide/TiO2 (Au)/C-PCBOD/perovskite/spiro-OMeTAD/Au to attain a power conversion efficiency (PCE) of 15.9%. The device performance was optimized with C-PCBOD as an interfacial mediate to modify the surface of the mesoporous TiO2 ETL; the C-PCBOD-treated device attained a significantly enhanced performance, PCE 18.3%. Electrochemical impedance spectral and photoluminescence decay measurements were carried out to understand the characteristics of electron transfer and charge recombination of the perovskite/TiO2 samples with and without a fullerene interfacial layer.
机译:具有STYRYL和oxetane交联基团的两种富勒烯衍生物用作改变TiO 2的电子输送层(ETL)的界面材料,掺杂有Au纳米颗粒,在低温条件下加工,以改善Perovskite太阳能电池的性能(PSC) 。可交联[6,6] - 苯基-C-61-丁基丁二酮丁二烯酸酯通过热处理在160℃下产生20分钟,而可交联[6,6] - 苯基-C-61-通过UV固化处理得到丁基氧丁烷树木酯(C-PCBOD)45秒。交联富勒烯都可以钝化TiO 2的表面捕集状态,并且在相应的原子力显微镜图像中所示的TiO 2层上也具有优异的表面覆盖。为了改善钙钛矿的结晶度,提出了一种简单的共溶剂方法,涉及将二甲基甲酰胺(DMF)和二甲基亚砜(DMSO)混合在特定比例(DMF / DMSO = 90/10)中。通过降低EtL表面的捕集密度,ETL和PeroVskite层之间的富勒烯衍生物层显着改善了电子提取和抑制电荷重组。用配置铟锡/ TiO2(AU)/ C-PCBOD / PEROVSKITE / SITO-OMETAD / AU制造平面PSC装置,以获得15.9%的功率转换效率(PCE)。用C-PCBOD优化器件性能,作为界面介导,以改变中孔TiO2 ETL的表面; C-PCBod处理的装置达到了显着增强的性能,PCE 18.3%。进行电化学阻抗光谱和光致发光衰减测量,以了解钙钛矿/ TiO2样品的电子转移和电荷重组的特性,具有富勒烯界面层。

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