Phase Engineering of 2D Spinel-Type Manganese Oxides.

Feng, Xiaoqiang; Zhai, Baoxing; Cheng, Ruiqing; Yin, Lei; Wen, Yao; Jiang, Jian; Wang, Hao; Li, Zhongwei et al. · Adv Mater · 2023

basic_science · Level V

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Abstract

2D magnetic materials have been of interest due to their unique long-range magnetic ordering in the low-dimensional regime and potential applications in spintronics. Currently, most studies are focused on strippable van der Waals magnetic materials with layered structures, which typically suffer from a poor stability and scarce species. Spinel oxides have a good environmental stability and rich magnetic properties. However, the isotropic bonding and close-packed nonlayered crystal structure make their 2D growth challenging, let alone the phase engineering. Herein, a phase-controllable synthesis of 2D single-crystalline spinel-type oxides is reported. Using the van der Waals epitaxy strategy, the thicknesses of the obtained tetragonal and hexagonal manganese oxide (Mn<sub>3</sub> O<sub>4</sub> ) nanosheets can be tuned down to 7.1 nm and one unit cell (0.7 nm), respectively. The magnetic properties of these two phases are evaluated using vibrating-sample magnetometry and first-principle calculations. Both structures exhibit a Curie temperature of 48 K. Owing to its ultrathin geometry, the Mn<sub>3</sub> O<sub>4</sub> nanosheet exhibits a superior ultraviolet detection performance with an ultralow noise power density of 0.126 pA Hz<sup>-1/2</sup> . This study broadens the range of 2D magnetic semiconductors and highlights their potential applications in future information devices.