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Force On A Current Loop In A Magnetic Field01:17

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Magnetic forces on wires carrying current are most frequently applied in motors. A DC motor is a device that converts electrical energy into mechanical work. In motors, wire loops are enclosed in a magnetic field. When current flows through the loops, the magnetic field applies torque, which causes the shaft to rotate. The direction of the current is reversed once the loop's surface area is lined up with the magnetic field, causing a constant torque on the loop. During the process,...
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Magnetic Force Between Two Parallel Currents01:13

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Two long, straight, and parallel current-carrying conductors exert a force of equal magnitude on one another. The direction of the force depends on the current direction in the conductors.
The force exerted by the magnetic field due to the first conductor over a finite length of the second conductor is given as the product of the current in the second conductor and  the vector product of the length vector along the current element and the field due to the first conductor. According to the...
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Magnetic Field Of A Current Loop01:16

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Consider a circular loop with a radius a, that carries a current I. The magnetic field due to the current at an arbitrary point P along the axis of the loop can be calculated using the Biot-Savart law.
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Torque On A Current Loop In A Magnetic Field01:13

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The most common application of magnetic force on current-carrying wires is in electric motors. These consist of loops of wire, which are placed between the magnets with a magnetic field. When current flows through the loops, the magnetic field applies torque, which causes the shaft to rotate, thus converting electrical energy to mechanical energy.
Consider a rectangular current-carrying loop containing N turns of wire, placed in a uniform magnetic field. The net force on a current-carrying loop...
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Potential Due to a Magnetized Object01:24

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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...
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Magnetic Field due to Moving Charges01:23

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A stationary charge creates and interacts with the electric field, while a moving charge creates a magnetic field.
Consider a point charge moving with a constant velocity. Like the electric field, the magnetic field at any point is directly proportional to the magnitude of the charge and inversely proportional to the square of the distance between the source point and the field point. However, unlike the electric field, the magnetic field is always perpendicular to the plane containing the line...
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相关实验视频

Updated: Jun 21, 2025

Author Spotlight: Magnetometric Characterization of Intermediates in the Solid-State Electrochemistry of Redox-Active Metal-Organic Frameworks
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由梯度氧化诱导的巨大轨道电流用于高效磁化切换.

Xinkai Xu1,2, Dainan Zhang2, Zhimin Liao3

  • 1School of Electronic Science and Engineering, University of Electronic Science and Technology of China, Chengdu, 610054, P. R. China.

Small (Weinheim an der Bergstrasse, Germany)
|July 15, 2024
PubMed
概括

研究人员开发了一种方法,使用Pt/Ta中的梯度氧化产生大轨道电流,显著提高旋转轨道扭矩 (SOT),以在低分散电子设备中有效切换磁化.

关键词:
梯度氧化过程中的氧化梯度.磁化切换开关的使用方法轨道电流的轨道电流旋转轨道扭矩矩

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科学领域:

  • 这就是Spintronics.
  • 材料科学 材料科学 材料科学
  • 凝聚物质物理学 凝聚物质物理学

背景情况:

  • 轨道角动量流提供了一条通往低分散电子设备的途径.
  • 有效地产生和利用轨道电流仍然是一个重大挑战.

研究的目的:

  • 开发一种诱导巨大轨道电流的方法.
  • 为了提高旋转轨道扭矩 (SOT) 以实现高效磁化开关.

主要方法:

  • Pt/Ta层的渐变氧化以诱导轨道电流.
  • 研究轨道拉什巴-埃德尔斯坦效应.
  • 在伊铁石榴石/Pt/TaOx异构结构中测量旋转电荷转换效率.

主要成果:

  • 在Pt/Ta中Ta的渐变氧化诱导了巨大的轨道电流.
  • 在SOT效率方面取得了显著的提高 (≈600%和1200%的改进).
  • 将磁化转换的临界电流密度降至最小的2.26-1.08 × 10 × 6 A cm-2 ,减少了12倍.

结论:

  • 梯度氧化是产生巨大轨道电流的有效策略.
  • 这种方法增强了SOT并降低了自旋电子设备的切换电流密度.
  • 这些发现为低分散,可调节的轨道电流设备开辟了新的途径.