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High-Voltage and Green-Emitting Perovskite Quantum Dot Solar Cells via Solvent Miscibility-Induced Solid-State Ligand Exchange

机译:基于溶剂混溶诱导固态配体交换的高压绿光钙钛矿量子点太阳能电池

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摘要

Advances in surface chemistry and manipulation of CsPbI3 perovskite quantum dots (PQDs) have enabled the replacement of native long-chain ligands with short-chain ligands, leading to their photovoltaic applications; however, there are no reports on those of wide-bandgap and green-emitting CsPbBr3 PQDs that are promising in high-voltage and colorful buildingintegrated photovoltaics. Binding energies required for ligand adsorption/desorption alter according to halide compositions of PQDs because of different soft/hard acid/base interactions, and therefore, the surface ligand-exchange process for CsPbBr3 PQDs should be developed. Herein, we demonstrate the utilization of CsPbBr3 PQDs in green light-emitting solar cells with a high opencircuit voltage (VOC) of 1.6 V, realized via solvent miscibilityinduced ligand exchange. Carboxylate esters with different alkyl chain lengths are used; longer carboxylate esters show high miscibility with hydrophobic substances, leading to more efficient ligand exchange with preserving CsPbBr3 PQD size but at the same time undesired less film thickness because of the stripping-out of as-cast CsPbBr3 PQDs. Based on these results, we devise a suitably optimized solvent mixture of carboxylate esters to enable efficient ligand exchange with suppressed stripping-out phenomena. Therefore, the resultant CsPbBr3 PQD solids show a power conversion efficiency of 4.23 and a VOC of similar to 1.6 V with green electroluminescence under applied voltage.
机译:CsPbI3钙钛矿量子点(PQD)的表面化学和操作的进步使得用短链配体取代天然长链配体成为可能,从而导致其光伏应用;然而,目前尚无关于宽带隙和绿色发光的CsPbBr3 PQDs在高压和彩色建筑一体化光伏中的前景的报道。由于软/硬酸/碱相互作用的不同,配体吸附/解吸所需的结合能会根据PQDs的卤化物组成而变化,因此,应开发CsPbBr3 PQDs的表面配体交换工艺。在此,我们展示了CsPbBr3 PQDs在具有1.6 V高开路电压(VOC)的绿色发光太阳能电池中的应用,这是通过溶剂混溶诱导的配体交换实现的。使用具有不同烷基链长度的羧酸酯;较长的羧酸酯与疏水性物质表现出高度混溶性,导致更有效的配体交换,保留 CsPbBr3 PQD 尺寸,但同时由于铸态 CsPbBr3 PQD 的剥离,膜厚不期望的减少。 基于这些结果,我们设计了一种适当优化的羧酸酯溶剂混合物,以实现有效的配体交换和抑制剥离现象。因此,所得的CsPbBr3 PQD固体在外加电压下显示出4.23%的功率转换效率和接近1.6 V的绿色电致发光VOC。

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