| Literature DB >> 26431472 |
Jiwoong Yang1, Rachel Fainblat2, Soon Gu Kwon1, Franziska Muckel2, Jung Ho Yu1, Hendrik Terlinden2, Byung Hyo Kim1, Dino Iavarone2, Moon Kee Choi1, In Young Kim3, Inchul Park1, Hyo-Ki Hong4, Jihwa Lee1, Jae Sung Son4, Zonghoon Lee4, Kisuk Kang1, Seong-Ju Hwang3, Gerd Bacher2, Taeghwan Hyeon1.
Abstract
Doping semiconductor nanocrystals with magnetic transition-metal ions has attracted fundamental interest to obtain a nanoscale dilute magnetic semiconductor, which has unique spin exchange interaction between magnetic spin and exciton. So far, the study on the doped semiconductor NCs has usually been conducted with NCs with larger than 2 nm because of synthetic challenges. Herein, we report the synthesis and characterization of Mn(2+)-doped (CdSe)13 clusters, the smallest doped semiconductors. In this study, single-sized doped clusters are produced in large scale. Despite their small size, these clusters have semiconductor band structure instead of that of molecules. Surprisingly, the clusters show multiple excitonic transitions with different magneto-optical activities, which can be attributed to the fine structure splitting. Magneto-optically active states exhibit giant Zeeman splittings up to elevated temperatures (128 K) with large g-factors of 81(±8) at 4 K. Our results present a new synthetic method for doped clusters and facilitate the understanding of doped semiconductor at the boundary of molecules and quantum nanostructure.Entities:
Year: 2015 PMID: 26431472 DOI: 10.1021/jacs.5b07888
Source DB: PubMed Journal: J Am Chem Soc ISSN: 0002-7863 Impact factor: 15.419