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Excitonic pathway to photoinduced magnetism in colloidal nanocrystals with nonmagnetic dopants

Authors :
Pinchetti, Valerio
Di, Qiumei
Lorenzon, Monica
Camellini, Andrea
Fasoli, Mauro
Zavelani-Rossi, Margherita
Meinardi, Francesco
Zhang, Jiatao
Crooker, Scott
Brovelli, Sergio
Source :
Nature Nanotechnology; February 2018, Vol. 13 Issue: 2 p145-151, 7p
Publication Year :
2018

Abstract

Electronic doping of colloidal semiconductor nanostructures holds promise for future device concepts in optoelectronic and spin-based technologies. Ag+is an emerging electronic dopant in iii–vand ii–vinanostructures, introducing intragap electronic states optically coupled to the host conduction band. With its full 4dshell Ag+is nonmagnetic, and the dopant-related luminescence is ascribed to decay of the conduction-band electron following transfer of the photoexcited hole to Ag+. This optical activation process and the associated modification of the electronic configuration of Ag+remain unclear. Here, we trace a comprehensive picture of the excitonic process in Ag-doped CdSe nanocrystals and demonstrate that, in contrast to expectations, capture of the photohole leads to conversion of Ag+to paramagnetic Ag2+. The process of exciton recombination is thus inextricably tied to photoinduced magnetism. Accordingly, we observe strong optically activated magnetism and diluted magnetic semiconductor behaviour, demonstrating that optically switchable magnetic nanomaterials can be obtained by exploiting excitonic processes involving nonmagnetic impurities. A comprehensive study of excitonic processes in Ag-doped CdSe nanocrystals shows the conversion of nonmagnetic Ag+dopants into paramagnetic Ag2+.

Details

Language :
English
ISSN :
17483387 and 17483395
Volume :
13
Issue :
2
Database :
Supplemental Index
Journal :
Nature Nanotechnology
Publication Type :
Periodical
Accession number :
ejs44928647
Full Text :
https://doi.org/10.1038/s41565-017-0024-8