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

Autor
Rutkowski, Bogdan
Kret, Sławomir
Kaleta, Anna
Kurowska, Bogusława
Gas, Katarzyna
Sawicki, Maciej
Szwacki, Nevill Gonzalez
Sadowski, Janusz
Kryvyi, Serhii
Data publikacji
2019
Abstrakt (EN)

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.

Słowa kluczowe EN
Strain engineering
magnetic properties
transmission electron microscopy
nanowires
magnetic nanocrystals
molecular beam epitaxy
Dyscyplina PBN
nauki fizyczne
Czasopismo
Nano Letters
Tom
19
Zeszyt
10
Strony od-do
7324-7333
ISSN
1530-6984
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