| Literature DB >> 28585275 |
Guangguang Huang1, Chunlei Wang1, Shuhong Xu1, Shenfei Zong1, Ju Lu1, Zhuyuan Wang1, Changgui Lu1, Yiping Cui1.
Abstract
Unlike widely used postsynthetic halide exchange for CsPbX3 (X is halide) perovskite nanocrystals (NCs), cation exchange of Pb is of a great challenge due to the rigid nature of the Pb cationic sublattice. Actually, cation exchange has more potential for rendering NCs with peculiar properties. Herein, a novel halide exchange-driven cation exchange (HEDCE) strategy is developed to prepare dually emitting Mn-doped CsPb(Cl/Br)3 NCs via postsynthetic replacement of partial Pb in preformed perovskite NCs. The basic idea for HEDCE is that the partial cation exchange of Pb by Mn has a large probability to occur as a concomitant result for opening the rigid halide octahedron structure around Pb during halide exchange. Compared to traditional ionic exchange, HEDCE is featured by proceeding of halide exchange and cation exchange at the same time and lattice site. The time and space requirements make only MnCl2 molecules (rather than mixture of Mn and Cl ions) capable of doping into perovskite NCs. This special molecular doping nature results in a series of unusual phenomenon, including long reaction time, core-shell structured mid states with triple emission bands, and dopant molecules composition-dependent doping process. As-prepared dual-emitting Mn-doped CsPb(Cl/Br)3 NCs are available for ratiometric temperature sensing.Entities:
Keywords: ion exchange; molecular doping; nanocrystals; perovskite; photoluminescence
Year: 2017 PMID: 28585275 DOI: 10.1002/adma.201700095
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849