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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Self-assembled carbon dot-wrapped perovskites enable light trapping and defect passivation for efficient and stable perovskite solar cells
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Self-assembled carbon dot-wrapped perovskites enable light trapping and defect passivation for efficient and stable perovskite solar cells

机译:自组装碳点缠绕的蠕动能够为高效稳定的钙钛矿太阳能电池提供光捕获和缺陷钝化

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Simultaneously improving photovoltaic performance and longevity has become the main focus towards the commercialization of metal halide perovskite solar technology. Herein, we demonstrate resilient, high-efficiency triple-cation perovskite solar cells (PSCs) by incorporating carbon dots (CDs) derived from human hair into the perovskite film synthesis. It is found that a toluene-based antisolvent containing CDs results in the formation of a bilayer structure where a wave-like textured top perovskite layer is assembled on the bottom dense perovskite counterpart, enabling reduced optical losses through light trapping. Further characterization has revealed that the CDs are formed around and over the surface of perovskite crystals, serving as a full armour to preserve the perovskite stoichiometry during the crystallization and operation. Accordingly, the CD-wrapped perovskite film demonstrates a reduced density of interfacial defects including metallic lead clusters and uncoordinated halide vacancies, improved carrier recombination lifetime, better energy alignment with the adjacent hole transport layer, and enhanced hydrophobicity. By leveraging these advantages to enhance the efficiency of PSCs, we have achieved a maximum power conversion efficiency of 20.22%, higher than 18.72% for PSCs without CDs, and the device stability is also significantly enhanced.
机译:同时提高光伏性能和寿命已成为金属卤化物钙钛矿太阳能技术商业化的主要焦点。在此,我们通过在钙钛矿薄膜合成中加入来自人类头发的碳点(CD),展示了弹性、高效的三阳离子钙钛矿太阳能电池(PSC)。研究发现,含有CDs的甲苯基抗溶剂可形成双层结构,其中顶部的波状纹理钙钛矿层组装在底部致密钙钛矿对应物上,从而通过光捕获降低光学损耗。进一步的表征表明,CDs形成于钙钛矿晶体的周围和表面之上,在结晶和操作过程中用作保护钙钛矿化学计量比的全盔甲。因此,CD包裹的钙钛矿薄膜显示了界面缺陷密度的降低,包括金属铅团簇和不协调的卤化物空位,载流子复合寿命的提高,与相邻空穴传输层的更好能量对准,以及疏水性的增强。通过利用这些优势来提高PSC的效率,我们实现了20.22%的最大功率转换效率,高于不带CD的PSC的18.72%,并且设备稳定性也显著增强。

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