论文标题
通过静水压力和配体取代在CRSBR中设计磁性
Designing magnetic properties in CrSBr through hydrostatic pressure and ligand substitution
论文作者
论文摘要
控制材料的磁性特性的能力对于基本研究至关重要,并支持许多信息技术。在这种情况下,二维材料是一个特别令人兴奋的平台,因为它们的高度可调性和易于实现纳米级设备。在这里,我们报告了通过静水压力和配体取代来操纵分层半导体CRSBR的A型抗磁磁特性的两种方法。静液压压缩晶胞,增加层间交换能量,同时降低Néel温度。配体取代,通过cl旋构实现,各向异性地压缩晶胞并抑制Cr-Halogen的共价,从而降低了磁晶的各向异性能量并降低了Néel温度。详细的结构分析与第一原理的计算结合表明,磁性的变化与直接CR-CR交换相互作用和CR-Anion superexchange途径的变化无关。此外,我们证明了Clying能够将层间耦合从抗铁磁磁性到铁磁磁性进行化学调整,这在已知的二维磁体中是独一无二的。磁性可调性与高序温度,化学稳定性和功能性半导体特性相结合,使CRSBR成为二维材料中磁性前后磁性设计前后的理想候选者。
The ability to control magnetic properties of materials is crucial for fundamental research and underpins many information technologies. In this context, two-dimensional materials are a particularly exciting platform due to their high degree of tunability and ease of implementation into nanoscale devices. Here we report two approaches for manipulating the A-type antiferromagnetic properties of the layered semiconductor CrSBr through hydrostatic pressure and ligand substitution. Hydrostatic pressure compresses the unit cell, increasing the interlayer exchange energy while lowering the Néel temperature. Ligand substitution, realized synthetically through Cl alloying, anisotropically compresses the unit cell and suppresses the Cr-halogen covalency, reducing the magnetocrystalline anisotropy energy and decreasing the Néel temperature. A detailed structural analysis combined with first-principles calculations reveal that alterations in the magnetic properties are intricately related to changes in direct Cr-Cr exchange interactions and the Cr-anion superexchange pathways. Further, we demonstrate that Cl alloying enables chemical tuning of the interlayer coupling from antiferromagnetic to ferromagnetic, which is unique amongst known two-dimensional magnets. The magnetic tunability, combined with a high ordering temperature, chemical stability, and functional semiconducting properties, make CrSBr an ideal candidate for pre- and post-synthetic design of magnetism in two-dimensional materials.