| Literature DB >> 31184156 |
Yingping Pang1, Minyi Zhang2, Dechao Chen1, Wei Chen1, Fei Wang1, Shaghraf Javaid Anwar1, Martin Saunders3, Matthew R Rowles4, Lihong Liu5, Shaomin Liu5, Amit Sitt6, Chunsen Li2,7, Guohua Jia1.
Abstract
Herein we employed a first-principles method based on density functional theory to investigate the surface energy and growth kinetics of wurtzite nanoplatelets to elucidate why nanoplatelets exhibit a uniform thickness of eight monolayers. We synthesized a series of wurtzite nanoplatelets (ZnSe, ZnS, ZnTe, and CdSe) with an atomically uniform thickness of eight monolayers. As a representative example, the growth mechanism of 1.39 nm thick (eight monolayers) wurtzite ZnSe nanoplatelets was studied to substantiate the proposed growth kinetics. The results show that the growth of the seventh and eighth layers along the [112̅0] direction of 0.99 nm (six monolayers) ZnSe magic-size nanoclusters is accessible, whereas the growth of the ninth layer is unlikely to occur because the formation energy is large. This work not only gives insights into the synthesis of atomically uniform thick wurtzite semiconductor nanoplatelets but also opens up new avenues to their applications in light-emitting diodes, catalysis, detectors, and lasers.Entities:
Year: 2019 PMID: 31184156 DOI: 10.1021/acs.jpclett.9b01195
Source DB: PubMed Journal: J Phys Chem Lett ISSN: 1948-7185 Impact factor: 6.475