首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Formation of highly uniform thinly-wrapped CsPbX3@silicone nanocrystals via self-hydrolysis: suppressed anion exchange and superior stability in polar solvents
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Formation of highly uniform thinly-wrapped CsPbX3@silicone nanocrystals via self-hydrolysis: suppressed anion exchange and superior stability in polar solvents

机译:通过自水解形成高度均匀的薄包装的CSPBX3硅氧烷纳米晶体:抑制阴离子交换和极性溶剂的卓越稳定性

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Cesium lead halide (CsPbX3, X = Cl, Br and I) perovskite nanocrystals have been exhibiting promising potential in optical and photonic applications, whereas there are challenges in improving the stability of nanocrystals toward their surroundings, owing to their highly ionic nature and inconsistency in the crystal lattice. Wrapping particles with insulating materials has been evidenced as an effective strategy but usually at the cost of poor morphology and low ensemble uniformity. Herein, we report a facile and robust approach for synthesizing highly uniform CsPbX3 nanocrystal ensembles, in which particles remain in a conventional cubic shape and are wrapped with thin silicone layers (CsPbX3@silicone) by controlling self-hydrolysis of the precursor (3-aminopropyl)triethoxysilane (APTES). Such silicone wrapping effectively passivates the surface-defects and restrains charge carrier losses from nanocrystals, leading to an enhancement in photoluminescence quantum yields. Our CsPbX3@silicone nanocrystals show great ability to resist harsh polar environments while maintaining the cubic phase for longer than 3000 hours. We also found that such silicone wrapping effectively prevents exchange of halide anions in the multi-halide-component system. Our work paves a way for making highly uniform and environment-insulating inorganic perovskite nanocrystals, which are a promising candidate for applications in lasers, light-emitting devices and other optical devices.
机译:铯卤化铯(CSPBX3,X = CL,BR和I)钙钛矿纳米晶体在光学和光子应用中一直在呈现有希望的潜力,而存在挑战在其高度离子性质和不一致的情况下提高了纳米晶体的稳定性纳米晶体的稳定性水晶晶格。具有绝缘材料的包装颗粒已被证明是一种有效的策略,但通常以不良形态和低合奏均匀性的成本。在此,我们报告了一种用于合成高度均匀的CSPBX3纳米晶体合成的容易和稳健的方法,其中颗粒保持常规立方体形状,并通过控制前体的自水解(3-氨基丙基的自水解包裹薄的硅树脂层(CSPBX3 @硅氧烷)包裹(3-氨基丙基)三乙氧基硅烷(Aptes)。这种有机硅缠绕有效地钝化了表面缺陷并限制了纳米晶体的电荷载体损失,导致光致发光量子产率的增强。我们的CSPBX3 @硅氧烷纳米晶体显示出抗拒苛刻的极地环境的能力,同时保持立方相超过3000小时。我们还发现这种有机硅缠绕有效地防止了多卤化物组件系统中的卤化物阴离子交换。我们的工作为制造高度均匀和环境绝缘的无机钙钛矿纳米晶体来铺平道路,这是激光器,发光装置和其他光学装置中的应用的有希望的候选者。

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