Wang Yang, Lan Yangjie, Song Qian, Vogelbacher Florian, Xu Ting, Zhan Yan, Li Mingzhu, Sha Wei E I, Song Yanlin
Key Laboratory of Green Printing, Institute of Chemistry, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
Beijing Engineering Research Center of Nanomaterials for Green Printing Technology, University of Chinese Academy of Sciences, Beijing, 100049, P. R. China.
Adv Mater. 2021 Apr;33(15):e2008091. doi: 10.1002/adma.202008091. Epub 2021 Mar 6.
Light harvesting is crucial for thin-film solar cells. To substantially reduce optical loss in perovskite solar cells (PSCs), hierarchical light-trapping nano-architectures enable absorption enhancement to exceed the conventional upper limit and have great potential for achieving state-of-the art optoelectronic performances. However, it remains a great challenge to design and fabricate a superior hierarchical light-trapping nano-architecture, which exhibits extraordinary light-harvesting ability and simultaneously avoids deteriorating the electrical performance of PSCs. Herein, colorful efficient moiré-PSCs are designed and fabricated incorporating moiré interference structures by the imprinting method with the aid of a commercial DVD disc. It is experimentally and theoretically demonstrated that the light harvesting ability of the moiré interference structure can be well manipulated through changing the rotation angle (0°-90°). The boosted short-circuit current is credited to augment light diffraction channels, leading to elongated optical paths, and fold sunlight into the perovskite layer. Moreover, the imprinting process suppresses the trap sites and voids at the active-layer interfaces with eliminated hysteresis. The moiré-PSC with an optimized 30° rotation angle achieves the best enhancement of light harvesting (28.5% higher than the pristine), resulting in efficiencies over 20.17% (MAPbI ) and 21.76% ((FAPbI ) (MAPbBr ) ).
光捕获对于薄膜太阳能电池至关重要。为了大幅降低钙钛矿太阳能电池(PSC)中的光学损耗,分级光捕获纳米结构能够实现吸收增强,超过传统上限,并具有实现先进光电性能的巨大潜力。然而,设计和制造一种卓越的分级光捕获纳米结构仍然是一个巨大的挑战,这种结构既要展现出非凡的光捕获能力,又要同时避免降低PSC的电学性能。在此,通过借助商用DVD光盘采用压印方法,设计并制造了包含莫尔干涉结构的彩色高效莫尔PSC。实验和理论证明,通过改变旋转角度(0°-90°)可以很好地调控莫尔干涉结构的光捕获能力。短路电流的提高归因于增加了光衍射通道,从而延长了光程,并将太阳光折叠到钙钛矿层中。此外,压印过程抑制了活性层界面处的陷阱位点和空隙,消除了滞后现象。具有优化30°旋转角度的莫尔PSC实现了光捕获的最佳增强(比原始状态高28.5%),(MAPbI )的效率超过20.17%,((FAPbI ) (MAPbBr ) )的效率超过21.76%。