Liang Shuang, He Sheng, Zhang Mingyue, Yan Yan, Jin Tao, Lian Tianquan, Lin Zhiqun
School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.
School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.
J Am Chem Soc. 2022 Jul 20;144(28):12901-12914. doi: 10.1021/jacs.2c04680. Epub 2022 Jul 11.
In stark contrast to conventional organic ligand-capped counterparts, the ability to create stable metal halide perovskite nanocrystals strongly tethered with conjugated polymers (CPs) represents an important endeavor toward tailoring charge carrier dynamics at their interface that critically underpins applications of this unique class of all semiconducting, organic-inorganic nanomaterials for optoelectronics. This, however, has yet to be largely explored. Herein, we report, for the first time, the unraveling of efficient charge separation at judiciously designed CP/perovskite quantum dot (QD) interface for photoinduced atom transfer radical polymerization (p-ATRP). Such scrutiny is rendered by crafting an array of monodisperse, highly stable, CP-ligated perovskite QDs with precisely controlled dimensions of each constituent via capitalizing on unimolecular, amphiphilic starlike block copolymers as nanoreactors. The intimate and permanent surface tethering of CPs imparts remarkable thermal, photo, and polar solvent stabilities of CP-ligated perovskite QDs. More importantly, they manifest efficient interfacial charge separation with a profound dependence on the length of ligated CPs and the size of perovskite QDs. The outstanding structural stabilities and charge separation characteristic enable CP-ligated perovskite QDs as robust photocatalysts for p-ATRP of a wide selection of monomers with stable and controllable reaction kinetics, also depending crucially on the length of CPs and the size of perovskite QDs. In principle, an exciting variety of CP-ligated, uniform perovskite QDs with virtually unlimited material choice of both markedly improved stabilities and tunable electronic band alignments can be readily accessed by exploiting the amphiphilic starlike block copolymer nanoreactor strategy for use in photodetectors, sensors, and LEDs, among other areas.
与传统的有机配体封端的对应物形成鲜明对比的是,制备与共轭聚合物(CP)紧密相连的稳定金属卤化物钙钛矿纳米晶体的能力,代表了在其界面处调控电荷载流子动力学的一项重要努力,这对这类独特的全半导体有机-无机纳米材料在光电子学中的应用至关重要。然而,这方面在很大程度上尚未得到充分探索。在此,我们首次报道了在经过精心设计的CP/钙钛矿量子点(QD)界面上实现高效电荷分离,用于光诱导原子转移自由基聚合(p-ATRP)。通过利用单分子两亲性星形嵌段共聚物作为纳米反应器,制备了一系列单分散、高度稳定、CP连接的钙钛矿量子点,其各组分尺寸精确可控,从而实现了这种精细研究。CP的紧密且永久的表面连接赋予了CP连接的钙钛矿量子点显著的热稳定性、光稳定性和在极性溶剂中的稳定性。更重要的是,它们表现出高效的界面电荷分离,这强烈依赖于连接的CP的长度和钙钛矿量子点的尺寸。出色的结构稳定性和电荷分离特性使CP连接的钙钛矿量子点成为用于多种单体的p-ATRP的强大光催化剂,具有稳定且可控的反应动力学,这也关键取决于CP的长度和钙钛矿量子点的尺寸。原则上,通过利用两亲性星形嵌段共聚物纳米反应器策略,可以很容易地获得各种CP连接的、均匀的钙钛矿量子点,其材料选择几乎不受限制,稳定性显著提高,电子能带排列可调,可用于光探测器、传感器和发光二极管等诸多领域。