| Literature DB >> 26567872 |
Savas Delikanli1, Mehmet Zafer Akgul1, Joseph R Murphy2, Biplob Barman2, Yutsung Tsai2, Thomas Scrace2, Peiyao Zhang2, Berkay Bozok1, Pedro Ludwig Hernández-Martínez3, Joseph Christodoulides4, Alexander N Cartwright2, Athos Petrou2, Hilmi Volkan Demir1,3.
Abstract
In this work, we report the manifestations of carrier-dopant exchange interactions in colloidal Mn(2+)-doped CdSe/CdS core/multishell quantum wells. The carrier-magnetic ion exchange interaction effects are tunable through wave function engineering. In our quantum well heterostructures, manganese was incorporated by growing a Cd0.985Mn0.015S monolayer shell on undoped CdSe nanoplatelets using the colloidal atomic layer deposition technique. Unlike previously synthesized Mn(2+)-doped colloidal nanostructures, the location of the Mn ions was controlled with atomic layer precision in our heterostructures. This is realized by controlling the spatial overlap between the carrier wave functions with the manganese ions by adjusting the location, composition, and number of the CdSe, Cd1-xMnxS, and CdS layers. The photoluminescence quantum yield of our magnetic heterostructures was found to be as high as 20% at room temperature with a narrow photoluminescence bandwidth of ∼22 nm. Our colloidal quantum wells, which exhibit magneto-optical properties analogous to those of epitaxially grown quantum wells, offer new opportunities for solution-processed spin-based semiconductor devices.Entities:
Keywords: core/shell; diluted magnetic semiconductors; nanoplatelets; photoluminescence; sp−d exchange interaction
Year: 2015 PMID: 26567872 DOI: 10.1021/acsnano.5b05903
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881