一种新型二维本征铁电体材料:Janus CeIBr 单层

IF 2.7 3区 物理与天体物理 Q2 PHYSICS, APPLIED Journal of Applied Physics Pub Date : 2024-08-08 DOI:10.1063/5.0206486
Shujing Li, JiaPeng Lv
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引用次数: 0

摘要

二维 Janus 材料的成功合成和独特性质的发现,使它们成为传感器、场效应晶体管和超灵敏探测器等应用领域的理想候选材料。在本研究中,我们利用第一原理计算预测了一种新型 Janus CeIBr 单层。计算结果表明,Janus CeIBr 单层具有双极磁性半导体的特性,表现出机械稳定性和热力学稳定性,居里温度高达 242 K,并具有面内磁各向异性(102.92 meV)。CeIBr 还具有 66 meV 的显著本征谷分裂,突出了其独特的谷对比特性。此外,施加双轴应变可有效地将 CeIBr 的磁基态从铁磁态转变为反铁磁态,并将易磁化轴的方向从平面内改变为平面外。我们的发现为利用 Janus CeIBr 单层设计基于反常谷霍尔效应的新型电子器件提供了理论基础。
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A new two-dimensional intrinsic ferrovalley material: Janus CeIBr monolayer
The successful synthesis and discovery of unique properties in two-dimensional Janus materials have positioned them as promising candidates for applications in sensors, field-effect transistors, and ultrasensitive detectors. In this study, we utilized first-principles calculations to predict a novel Janus CeIBr monolayer. Our calculations show that Janus CeIBr monolayer behaves as a bipolar magnetic semiconductor, demonstrating both mechanical and thermodynamic stability, along with a high Curie temperature of 242 K and in-plane magnetic anisotropy (102.92 meV). A notable intrinsic valley splitting of 66 meV is also evident in CeIBr, highlighting its distinctive valley contrast characteristic. Furthermore, the application of biaxial strain effectively transforms the magnetic ground state of CeIBr from a ferromagnetic state to an antiferromagnetic state and alters the direction of the easy magnetization axis from in-plane to out-of-plane. Our findings offer a theoretical foundation for the design of novel anomalous valley Hall effect-based electronic devices utilizing the Janus CeIBr monolayer.
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来源期刊
Journal of Applied Physics
Journal of Applied Physics 物理-物理:应用
CiteScore
5.40
自引率
9.40%
发文量
1534
审稿时长
2.3 months
期刊介绍: The Journal of Applied Physics (JAP) is an influential international journal publishing significant new experimental and theoretical results of applied physics research. Topics covered in JAP are diverse and reflect the most current applied physics research, including: Dielectrics, ferroelectrics, and multiferroics- Electrical discharges, plasmas, and plasma-surface interactions- Emerging, interdisciplinary, and other fields of applied physics- Magnetism, spintronics, and superconductivity- Organic-Inorganic systems, including organic electronics- Photonics, plasmonics, photovoltaics, lasers, optical materials, and phenomena- Physics of devices and sensors- Physics of materials, including electrical, thermal, mechanical and other properties- Physics of matter under extreme conditions- Physics of nanoscale and low-dimensional systems, including atomic and quantum phenomena- Physics of semiconductors- Soft matter, fluids, and biophysics- Thin films, interfaces, and surfaces
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