论文标题

在2D Ruddlesden-Popper混合动力钙蛋白酶边缘的自我形成2D/3D异质结构负责吸引光电特性和较高的细胞效率

Self-formed 2D/3D Heterostructure on the Edge of 2D Ruddlesden-Popper Hybrid Perovskites Responsible for Intriguing Optoelectronic Properties and Higher Cell Efficiency

论文作者

Qin, Zhaojun, Dai, Shenyu, Gajjala, Chalapathi Charan, Wang, Chong, Hadjiev, Viktor G., Yang, Guang, Li, Jiabing, Zhong, Xin, Tang, Zhongjia, Yao, Yan, Guloy, Arnold M., Reddy, Rohith, Mayerich, David, Deng, Liangzi, Yu, Qingkai, Feng, Guoying, Wang, Zhiming, Bao, Jiming

论文摘要

低能量边缘光致发光的观察及其对Ruddlesden-Popper Perovskites太阳能电池效率的有益影响释放了一项密集的研究工作,以揭示其起源。但是,由于尚未确定基本的材料结构,这项努力已经面临更多的挑战。新的模块和观察似乎也没有融合。以2D(BA)2(MA)2PB3BR10为例,我们表明,由于边缘上的BA丢失,形成了3D MapBBR3。这种自我形成的MAPBBR3可以解释在各种条件下报道的边缘发射,而报道的有趣的光电特性,例如内部2D钙钛矿,快速的激子解离和长期载体寿命,可以通过自我形成的2D/3D后期的perovskite perovskite the perovskite捕获。 3D钙钛矿是通过亚微米红外光谱鉴定出来的,这是从冰柜磨砂纳米尺寸的2D钙钛矿中XRD签名的出现及其对外部静水压力的光致发光响应。这种边缘排放谜团的启示和自我形成的2D/3D异质结构的识别为高性能光电设备的工程2D Perovskites提供了新的方法。

The observation of low energy edge photoluminescence and its beneficial effect on the solar cell efficiency of Ruddlesden-Popper perovskites has unleashed an intensive research effort to reveal its origin. This effort, however, has been met with more challenges as the underlying material structure has still not been identified; new modellings and observations also do not seem to converge. Using 2D (BA)2(MA)2Pb3Br10 as an example, we show that 3D MAPbBr3 is formed due to the loss of BA on the edge. This self-formed MAPbBr3 can explain the reported edge emission under various conditions, while the reported intriguing optoelectronic properties such as fast exciton trapping from the interior 2D perovskite, rapid exciton dissociation and long carrier lifetime can be understood via the self-formed 2D/3D lateral perovskite heterostructure. The 3D perovskite is identified by submicron infrared spectroscopy, the emergence of XRD signature from freezer-milled nanometer-sized 2D perovskite and its photoluminescence response to external hydrostatic pressure. The revelation of this edge emission mystery and the identification of a self-formed 2D/3D heterostructure provide a new approach to engineering 2D perovskites for high-performance optoelectronic devices.

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