Enhanced Ferromagnetism in Cylindrically Confined MnAs Nanocrystals Embedded in Wurtzite GaAs Nanowire Shells.

Strain engineering magnetic nanocrystals magnetic properties molecular beam epitaxy nanowires transmission electron microscopy

Journal

Nano letters
ISSN: 1530-6992
Titre abrégé: Nano Lett
Pays: United States
ID NLM: 101088070

Informations de publication

Date de publication:
09 10 2019
Historique:
pubmed: 11 9 2019
medline: 11 9 2019
entrez: 11 9 2019
Statut: ppublish

Résumé

Nearly a 30% increase in the ferromagnetic phase transition temperature has been achieved in strained MnAs nanocrystals embedded in a wurtzite GaAs matrix. Wurtzite GaAs exerts tensile stress on hexagonal MnAs nanocrystals, preventing a hexagonal to orthorhombic structural phase transition, which in bulk MnAs is combined with the magnetic one. This effect results in a remarkable shift of the magneto-structural phase transition temperature from 313 K in the bulk MnAs to above 400 K in the tensely strained MnAs nanocrystals. This finding is corroborated by the state of the art transmission electron microscopy, sensitive magnetometry, and the first-principles calculations. The effect relies on defining a nanotube geometry of molecular beam epitaxy grown core-multishell wurtzite (Ga,In)As/(Ga,Al)As/(Ga,Mn)As/GaAs nanowires, where the MnAs nanocrystals are formed during the thermal-treatment-induced phase separation of wurtzite (Ga,Mn)As into the GaAs-MnAs granular system. Such a unique combination of two types of hexagonal lattices provides a possibility of attaining quasi-hydrostatic tensile strain in MnAs (impossible otherwise), leading to the substantial ferromagnetic phase transition temperature increase in this compound.

Identifiants

pubmed: 31500416
doi: 10.1021/acs.nanolett.9b02956
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

7324-7333

Auteurs

Anna Kaleta (A)

Institute of Physics , Polish Academy of Sciences , Aleja Lotnikow 32/46 , PL-02-668 Warszawa , Poland.

Slawomir Kret (S)

Institute of Physics , Polish Academy of Sciences , Aleja Lotnikow 32/46 , PL-02-668 Warszawa , Poland.

Katarzyna Gas (K)

Institute of Physics , Polish Academy of Sciences , Aleja Lotnikow 32/46 , PL-02-668 Warszawa , Poland.

Boguslawa Kurowska (B)

Institute of Physics , Polish Academy of Sciences , Aleja Lotnikow 32/46 , PL-02-668 Warszawa , Poland.

Serhii B Kryvyi (SB)

Institute of Physics , Polish Academy of Sciences , Aleja Lotnikow 32/46 , PL-02-668 Warszawa , Poland.

Bogdan Rutkowski (B)

Faculty of Metals Engineering and Industrial Computer Science , AGH University of Science and Technology , Aleja A. Mickiewicza 30 , 30-059 Kraków , Poland.

Nevill Gonzalez Szwacki (NG)

Institute of Theoretical Physics, Faculty of Physics , University of Warsaw , Pasteura 5 , 02-093 Warszawa , Poland.

Maciej Sawicki (M)

Institute of Physics , Polish Academy of Sciences , Aleja Lotnikow 32/46 , PL-02-668 Warszawa , Poland.

Janusz Sadowski (J)

Institute of Physics , Polish Academy of Sciences , Aleja Lotnikow 32/46 , PL-02-668 Warszawa , Poland.
Department of Physics and Electrical Engineering , Linnaeus University , SE-391 82 Kalmar , Sweden.

Classifications MeSH