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Room temperature ferromagnetism of monolayer chromium telluride with perpendicular magnetic anisotropy

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arxiv 2103.00251 v1 pith:FNGMUXTJ submitted 2021-02-27 cond-mat.mtrl-sci

Room temperature ferromagnetism of monolayer chromium telluride with perpendicular magnetic anisotropy

classification cond-mat.mtrl-sci
keywords magneticcr3te4monolayertemperatureferromagnetismroomanisotropyaxis
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The realization of long-range magnetic ordering in two-dimensional (2D) systems can potentially revolutionize next-generation information technology. Here, we report the successful fabrication of crystalline Cr3Te4 monolayers with room temperature ferromagnetism. Using molecular beam epitaxy, the growth of 2D Cr3Te4 films with monolayer thickness is demonstrated at low substrate temperatures (~100C), compatible with Si CMOS technology. X-ray magnetic circular dichroism measurements reveal a Curie temperature (Tc) of ~344 K for the Cr3Te4 monolayer with an out-of-plane magnetic easy axis, which decreases to ~240 K for the thicker film (~ 7 nm) with an in-plane easy axis. The enhancement of ferromagnetic coupling and the magnetic anisotropy transition is ascribed to interfacial effects, in particular the orbital overlap at the monolayer Cr3Te4/graphite interface, supported by density-functional theory calculations. This work sheds light on the low-temperature scalable growth of 2D nonlayered materials with room temperature ferromagnetism for new magnetic and spintronic devices.

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