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首页> 外文期刊>Nanotechnology >Dendrimer ligands-capped CH3NH3PbBr3 perovskite nanocrystals with delayed halide exchange and record stability against both moisture and water
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Dendrimer ligands-capped CH3NH3PbBr3 perovskite nanocrystals with delayed halide exchange and record stability against both moisture and water

机译:Dendrimer配体 - 封端的CH3NH3PBBBR3钙钛矿纳米晶体,其延迟卤化物交换和对水分和水的记录稳定性

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摘要

CH3NH3PbBr3 perovskite nanocrystals (NCs) suffer from poor stability because of their high sensitivity to environmental moisture and water. To solve this problem, previous works mainly focus on embedding perovskite NCs into water-resistant matrix to form large composites (size of microns or larger). As an alternative solution without serious changing of NC size, enhancing the stability of perovskite NCs themselves by ligand engineering is rarely reported. In this work, we used hyperbranched polyamidoamine (PAMAM) dendrimers with two different generations (G0 and G4) to synthesize CH3NH3PbBr3 perovskite NCs with high photoluminescence (PL) quantum yields (QY) above 70% and a new record stability. A novel dendrimers generation-dependent stability of perovskite NCs was observed. The water-resistance time is 18 h (27 h) for perovskite NCs capped by G0 (G4) generation of PAMAM, which is 7 times (11 times) longer than that of traditional oleic acid-capped NCs. Similar PAMAM generation-related stability is also observed in moisture-resistance tests. The stability time against moisture is 500 h (800 h) for G0 (G4) generation of PAMAM-capped perovskite NCs, which is a new record stability time against moisture for CH3NH3PbBr3 perovskite NCs. In addition, our results also indicate that PAMAM ligands outside perovskite NCs can dramatically slow down the speed of halide exchange. Even for the mixture of perovskite NCs with two different halide composition, the original luminescence properties of PAMAM-capped perovskite NCs can retain after mixing. In view of slow halide exchange speed, excellent water and moisture stability, PAMAM dendrimers-capped perovskite NCs and their mixture are available as color conversion single layer in fabrication of light-emitting diodes (LED).
机译:CH3NH3PBBR3 Perovskite纳米晶体(NCS)由于其对环境水分和水的高敏感性而造成差的稳定性。为了解决这个问题,之前的作品主要专注于将钙钛矿NC嵌入防水基质中以形成大型复合材料(尺寸或更大的尺寸)。作为没有严重改变NC尺寸的替代解决方案,很少报道通过配体工程增强钙钛矿NCS本身的稳定性。在这项工作中,我们使用了具有两种不同世代(G0和G4)的超支化聚酰胺(PAMAM)树枝状体,以合成高于70%以上的高光致发光(PL)量子产率(QY)和新的记录稳定性。观察到一种新的树枝状大分子依赖于钙钛矿NCS的依赖性稳定性。对于由G0(G4)产生的PAMAM的钙钛矿NCs的耐水时间为18小时(27小时),其比传统油酸封端的NCs长7次(11倍)。在防潮试验中也观察到类似的PAMAM生成相关的稳定性。抗水分的稳定时间为PAMAM-CAPPBBBBBR3钙钛矿NCS的G0(G4)生成500h(800小时)(800小时),这是一种新的记录稳定性稳定时间。此外,我们的结果还表明佩洛斯库特NCS外的PAMAM配体可以显着减缓卤化物交换的速度。甚至对于用两种不同的卤化物组成的钙钛矿NCS的混合物,普及普及的钙钛矿NCS的原始发光性能也可以在混合后保留。考虑到卤化卤换速度,优异的水和水分稳定性,PAMAM树枝状大分子封端的钙钛矿NC和它们的混合物可作为彩色转换单层制造发光二极管(LED)。

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