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Perovskite solar cells for roll-to-roll fabrication

机译:用于卷对卷制造的钙钛矿太阳能电池

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Perovskite solar cell (PSCs) is considered as the game changer in emerging photovoltaics technology. The highest certified efficiency is 22% with high temperature processed (~500℃) TiO_2 based electron transport layer (ETL). High temperature process is a rudimentary hindrance towards roll-to-roll processing of PSCs on flexible substrates. Low temperature solution process (150℃) ZnO based ETL is one of the most promising candidate for large scale roll-to-roll fabrication of cells as it has nearly identical electron affinity (4.2 eV) of TiO_2. The mixed organic perovskite (MA_(0.6)FA_(0.4)PbI_3) devices with Al doped ZnO (AZO) ETL demonstrate average cell efficiency over 16%, which is the highest ever reported efficiency for this device configuration. The energy level alignment and related interfacial charge transport dynamics at the interface of ZnO and perovskite films and the adjacent charge transport layers are investigated. Significantly improved device stability, hysteresis free device photocurrent have been observed in MA_(0.6)FA_(0.4)PbI_3 cells. A systematic electrochemical impedance spectroscopy, frequency dependent capacitance spectra, surface morphology and topography characterization have been conducted to understand the role of interfacial electronic properties between perovskite and neighbouring layers in perovskite device. A standardized degradation study, interfacial electronic property and capacitive spectra analysis of aged device, have been measured to understand the enhanced device stability in mixed MA_(0.6)FA_(0.4)PbI_3 cells. Slow perovskite material decomposition rate and augmented device lifetime with AZO based devices have been found to be correlated with the more hydrophobic and acidic nature of AZO surface compared to pristine ZnO film.
机译:钙钛矿太阳能电池(PSC)被认为是新兴光伏技术的革命者。高温处理(〜500℃)TiO_2基电子传输层(ETL)的最高认证效率为22%。高温工艺是对柔性基板上的PSC进行卷对卷处理的基本障碍。低温固溶工艺(<150℃)基于ZnO的ETL是大规模卷对卷制造电池的最有希望的候选材料之一,因为它具有几乎相同的TiO_2电子亲和力(4.2 eV)。具有Al掺杂的ZnO(AZO)ETL的混合有机钙钛矿(MA_(0.6)FA_(0.4)PbI_3)器件显示平均电池效率超过16%,这是该器件配置中报道的最高效率。研究了ZnO和钙钛矿薄膜与相邻电荷传输层界面处的能级排列和相关的界面电荷传输动力学。显着提高了器件稳定性,在MA_(0.6)FA_(0.4)PbI_3电池中观察到了无滞后的器件光电流。已经进行了系统的电化学阻抗谱,频率相关的电容谱,表面形貌和形貌表征,以了解钙钛矿和相邻钙钛矿装置中各层之间的界面电子性能的作用。测量了标准化的降解研究,老化设备的界面电子特性和电容光谱分析,以了解混合MA_(0.6)FA_(0.4)PbI_3细胞中增强的设备稳定性。与原始的ZnO薄膜相比,已经发现基于AZO的器件的钙钛矿材料分解速度慢和器件寿命增加与AZO表面的疏水性和酸性性质有关。

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