Key Laboratory of Eco-Functional Polymer Materials of the Ministry of Education, Key Laboratory of Bioelectrochemistry & Environmental Analysis of Gansu Province, College of Chemistry and Chemical Engineering, Northwest Normal University, Lanzhou 730070, PR China.
Key Laboratory of Eco-Functional Polymer Materials of the Ministry of Education, Key Laboratory of Bioelectrochemistry & Environmental Analysis of Gansu Province, College of Chemistry and Chemical Engineering, Northwest Normal University, Lanzhou 730070, PR China.
J Colloid Interface Sci. 2023 Jan;629(Pt A):63-72. doi: 10.1016/j.jcis.2022.08.129. Epub 2022 Aug 24.
Cesium lead halide perovskite quantum dots (QDs) have attracted immense attention for luminescent materials due to their narrow emission bands and color-tunable emission. However, indispensable surface ligands originating from ligand-assisted synthesis strategies severely deteriorate the stability and luminescence properties of QDs since these ligands have a highly dynamic binding. Herein, we used a green fluorescence BODIPY molecule containing thiol (named SH-BDP) to regulate the CsPbBr QDs surface by ligand regulation. Density functional theory calculations proved that the SH-BDP molecule could bind to the exposed Pb of CsPbBr QDs stronger than traditional ligands to form stable SH-BDP-QDs. Moreover, the SH-BDP fixed on the CsPbBr QDs surface can improve water and light resistance. It also served as a knob to tune their luminescence properties and the reversible thermal-stimuli response. Finally, the multi-response property of SH-BDP-QDs was realized under polar solvent or heat along with UV light. In addition, we used the SH-BDP-QDs to create various anti-counterfeiting labels; several luminous modes were achieved under different external stimuli, which improved the quality of the optical anti-counterfeiting labels and ensured information security. This work indicates the immense potential of surface ligand manipulation in improving the stability and multi-stimuli-responsive optical encoding of perovskite quantum dots.
铯铅卤钙钛矿量子点 (QDs) 因其窄发射带和可调谐发射颜色而成为发光材料的研究热点。然而,由于配体辅助合成策略中不可避免的表面配体,它们的高动态结合严重恶化了 QDs 的稳定性和发光性能。在本研究中,我们使用含有巯基的绿色荧光 BODIPY 分子 (命名为 SH-BDP) 通过配体调节来调控 CsPbBr QDs 的表面。密度泛函理论计算证明,SH-BDP 分子可以比传统配体更强地结合 CsPbBr QDs 暴露的 Pb 以形成稳定的 SH-BDP-QDs。此外,固定在 CsPbBr QDs 表面的 SH-BDP 可以提高其耐水和耐光性。它还可以作为调节其发光性能和可逆热刺激响应的旋钮。最后,SH-BDP-QDs 在极性溶剂或热以及紫外光的共同作用下表现出多响应特性。此外,我们使用 SH-BDP-QDs 制作了各种防伪标签;在不同的外部刺激下实现了多种发光模式,提高了光学防伪标签的质量,保证了信息安全。这项工作表明,表面配体操纵在提高钙钛矿量子点的稳定性和多刺激响应光学编码方面具有巨大的潜力。