Abstract
With the use of supercritical CO 2 , two-dimensional defective MoO 3− x can achieve ideal ferromagnetic responses with the Curie temperature reaching over 380 K. Two-dimensional (2D) magnetic semiconductors are crucial in spin-based information-processing technologies due to the combination of the strong 2D quantum effects, surface effects and the control of spin states. However, most experimental approaches for tuning 2D magnets achieve pure ferromagnetism at low temperature. Herein, a defect engineering strategy using supercritical CO 2 is introduced to achieve nanostructure with abundant defects for 2D MoO 3− x , and room-temperature ferromagnetism can be obtained and tuned by introduction of the Mo 5+ ion depending on the change of supercritical pressure. In defective regions, the presence of the pentacoordinated [Mo 5+ O 5 ] centers can achieve ferromagnetic ordering resulting in room-temperature ferromagnetism. With increasing supercritical pressure, it is easier for the supercritical CO 2 to break the Mo–O bonds, achieving enhancement of the ferromagnetic performance with desired Curie temperature (>380 K). The magnetic responses in the MoO 3− x system provide a step closer to the expansion of spin electronics.
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CITATION STYLE
Liu, W., & Xu, Q. (2023). Supercritical CO 2 -induced room-temperature ferromagnetism in two-dimensional MoO 3− x. Industrial Chemistry & Materials, 1(1), 140–145. https://doi.org/10.1039/d2im00028h
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