在磁性元材料中,自旋驱动光电流的可调性取决于尺度
Gabriele Cavanna1,2, Hidehisa Taketani1,2, Hikaru Watanabe3
1Division of Materials Physics, Graduate School of Engineering Science, The University of Osaka, Toyonaka, Osaka 560-8531, Japan.
Nanophotonics (Berlin, Germany)
|December 22, 2025
概括
研究人员发现,改变磁性超材料的尺寸强烈影响了当前的一代. 这一发现为自旋电子设备控制自旋电流提供了新的方法.
科学领域:
- 物理 物理学 物理
- 材料科学 材料科学 材料科学
- 纳米技术纳米技术
背景情况:
- 旋转电流对于先进的旋转电子设备至关重要,但其产生和控制具有挑战性.
- 磁性超材料通过工程结构和光相互作用提供可调节的特性.
研究的目的:
- 为了研究三角孔Co/Pt磁性元材料中横向缩放对旋转电流产生的影响.
- 探索与元材料几何学相关的光和磁光效应.
主要方法:
- 制造具有不同三角孔大小的Co/Pt磁性元材料.
- 系统的光学表征和自旋电流生成的测量.
- 分析不同波长和模式尺度的光电流响应.
主要成果:
- 超材料几何学的侧面缩放显著影响了非线性旋转电流的产生.
- 观察到意想不到的现象,包括光电信号逆转和在特定波长的完全抑制.
- 建立了光学共振条件和旋转电流生成效率之间的直接联系.
结论:
- 超材料几何学是工程自旋电流的一个新参数.
- 可实现自旋电流大小和信号的动态调性.
- 这些发现为可调节,可光学控制的自旋电子设备铺平了道路.
关键词:
磁性超材料是一种磁性超材料.磁光加效应是一种磁光加效应.视光旋转电子技术 (opto-spintronics) 是一个非常重要的技术.旋转电流 旋转电流 旋转电流旋转偏振光电流的光电流.对称性工程是对称性的工程.更多相关视频
07:42Optimizing Magnetic Force Microscopy Resolution and Sensitivity to Visualize Nanoscale Magnetic Domains
Published on: July 20, 2022
3.2K
09:06Visualizing Uniaxial-strain Manipulation of Antiferromagnetic Domains in Fe1+YTe Using a Spin-polarized Scanning Tunneling Microscope
Published on: March 24, 2019
8.5K
相关概念视频
Paramagnetism
2.9K
Paramagnets are materials with unpaired electrons that possess a finite magnetic moment. In the absence of a magnetic field, these moments are randomly oriented, and thus the net moment is zero. Under an external field, a torque acting on the moments tends to align them along the field's direction. However, the random thermal motion of electrons produces a torque opposite to the external field and tries to disorient the moments. These two competing effects align only a few moments along the...
2.9K
Atomic Nuclei: Nuclear Spin State Overview
1.9K
NMR-active nuclei have energy levels called 'spin states' that are associated with the orientations of their nuclear magnetic moments. In the absence of a magnetic field, the nuclear magnetic moments are randomly oriented, and the spin states are degenerate. When an external magnetic field is applied, the spin states have only 2 + 1 orientations available to them. A proton with = ½ has two available orientations. Similarly, for a quadrupolar nucleus with a nuclear spin value of one, the...
1.9K
Ferromagnetism
2.9K
Materials like iron, nickel, and cobalt consist of magnetic domains, within which the magnetic dipoles are arranged parallel to each other. The magnetic dipoles are rigidly aligned in the same direction within a domain by quantum mechanical coupling among the atoms. This coupling is so strong that even thermal agitation at room temperature cannot break it. The result is that each domain has a net dipole moment. However, some materials have weaker coupling, and are ferromagnetic at lower...
2.9K
Potential Due to a Magnetized Object
752
Magnetic dipoles in magnetic materials are aligned when placed under an external magnetic field. For paramagnets and ferromagnets, dipole alignment occurs in the direction of the magnetic field. However, the dipoles align opposite to the field in the case of diamagnets. This state of magnetic polarization due to the external field is called magnetization. Magnetization is defined as the dipole moment per unit volume. It plays a similar role to polarization in electrostatics.
The vector...
The vector...
752
Atomic Nuclei: Nuclear Relaxation Processes
1.2K
In the absence of an external magnetic field, nuclear spin states are degenerate and randomly oriented. When a magnetic field is applied, the spins begin to precess and orient themselves along (lower energy) or against (higher energy) the direction of the field. At equilibrium, a slight excess population of spins exists in the lower energy state. Because the direction of the magnetic field is fixed as the z-axis, the precessing magnetic moments are randomly oriented around the z-axis.
1.2K
Colors and Magnetism
13.9K
Color in Coordination Complexes
When atoms or molecules absorb light at the proper frequency, their electrons are excited to higher-energy orbitals. For many main group atoms and molecules, the absorbed photons are in the ultraviolet range of the electromagnetic spectrum, which cannot be detected by the human eye. For coordination compounds, the energy difference between the d orbitals often allows photons in the visible range to be absorbed and emitted, which is seen as colors by the human...
When atoms or molecules absorb light at the proper frequency, their electrons are excited to higher-energy orbitals. For many main group atoms and molecules, the absorbed photons are in the ultraviolet range of the electromagnetic spectrum, which cannot be detected by the human eye. For coordination compounds, the energy difference between the d orbitals often allows photons in the visible range to be absorbed and emitted, which is seen as colors by the human...
13.9K
