4.8 Article

Defect-Rich Dopant-Free ZrO2 Nanostructures with Superior Dilute Ferromagnetic Semiconductor Properties

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 138, Issue 36, Pages 11896-11906

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.6b06949

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Funding

  1. Natural Sciences and Engineering Research Council of Canada

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Control of the spin degree of freedom of an electron has brought about a new era in spin-based applications, particularly spin-based electronics, with the potential to outperform the traditional charge-based semiconductor technology for data storage and information processing. However, the realization of functional spin-based devices for information processing remains elusive due to several fundamental challenges such as the low Curie temperature of group III-V and II-VI semiconductors (<200 K), and the low spin-injection efficiencies of existing III-V, II-VI, and transparent conductive oxide semiconductors in a multilayer device structure, which are caused by precipitation and migration of &pants from the host layer to the adjacent layers. Here, we,use catalyst-assisted pulsed laser deposition to grow, for the first time, oxygen vacancy defect-rich dopant-free ZrO2 nanostructures with high-T-C (700 K) and high magnetization (5.9 emu/g). The observed magnetization is significantly greater:than both doped and defect-rich transparent conductive oxide nanomaterials reported to date. We also provide the experimental evidence that it is the amounts and types of oxygen vacancy defects in, and not the phase of ZrO2 that control the ferromagnetic order in undoped ZrO2 nanostructures. To explain the origin of ferromagnetism in these ZrO2 nanastructures we hypothesize a new defect-induced bound polaron model, which is generally applicable to other defect-rich, dopant-free transparent conductive oxide nanostructures. These results provide new insights into magnetic ordering in undoped dilute ferromagnetic semiconductor oxides and contribute to the design of exotic magnetic and novel multifunctional materials.

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