多铁性
自旋电子学
凝聚态物理
反铁磁性
磁性
材料科学
铁电性
磁电效应
极化密度
铁磁性
单层
密度泛函理论
极化(电化学)
磁矩
联轴节(管道)
实现(概率)
相变
赫巴德模型
相(物质)
感应耦合
MXenes公司
作者
Jianwei Wei,Jian Chen,Kexin Chen,Yaohui Yin,Ai Wang,Chao Xin
摘要
Two-dimensional multiferroic materials with coupled magnetic and ferroelectric properties are highly desirable for next-generation spintronic and memory applications. However, the realization of intrinsic 2D multiferroics with strong magnetoelectric coupling and room-temperature stability remains a significant challenge. Here, we identify monolayer Cr2NCl2 as a promising candidate by systematically investigating its magnetic and magnetoelectric properties using density functional theory (DFT) with Hubbard U corrections. Our results reveal that Cr2NCl2 adopts a ground-state interlayer antiferromagnetic (AFM1) configuration with asymmetric magnetic compensate moments across Cr layers, resulting in spontaneous out-of-plane polarization and ferrimagnetism. Monte Carlo simulations based on spin-orbit coupling (SOC)-corrected exchange interactions predict a Néel temperature of ∼307 K, close to room temperature. Furthermore, a magnetic phase transition from interlayer antiferromagnetic (AFM1) to ferromagnetic (FM) order can be induced by applying an out-of-plane electric field. These findings demonstrate that Cr2NCl2 is a robust 2D magnetoelectric multiferroic material with electrically tunable magnetism at ambient conditions, providing a viable platform for practical magnetoelectric devices.
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