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関連する概念動画

Magnetic Field due to Moving Charges01:23

Magnetic Field due to Moving Charges

9.4K
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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Ferromagnetism01:31

Ferromagnetism

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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...
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Magnetic Field Due To A Thin Straight Wire01:28

Magnetic Field Due To A Thin Straight Wire

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Consider an infinitely long straight wire carrying a current I. The magnetic field at point P at a distance a from the origin can be calculated using the Biot-Savart law.
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Torque On A Current Loop In A Magnetic Field01:13

Torque On A Current Loop In A Magnetic Field

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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...
4.8K
Atomic Nuclei: Magnetic Resonance01:05

Atomic Nuclei: Magnetic Resonance

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The number of nuclear spins aligned in the lower energy state is slightly greater than those in the higher energy state. In the presence of an external magnetic field, as the spins precess at the Larmor frequency, the excess population results in a net magnetization oriented along the z axis. When a pulse or a short burst of radio waves at the Larmor frequency is applied along the x axis, the coupling of frequencies causes resonance and flips the nuclear spins of the excess population from the...
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Energy In A Magnetic Field01:24

Energy In A Magnetic Field

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If a magnetic field is sustained, there must be a current in a closed circuit or loop, implying some energy has been spent in creating the field. If this energy is not dissipated via the circuit's resistance, it is stored in the field.
Take an ideal inductor with zero resistance. Although it's practically impossible, assume that the coil's resistance is so small that it is practically negligible. The loss of the field's energy to dissipate thermal energy (or heat) is thus...
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Frequency Mixing Magnetic Detection Scanner for Imaging Magnetic Particles in Planar Samples
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Frequency Mixing Magnetic Detection Scanner for Imaging Magnetic Particles in Planar Samples

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テラヘルツにおける磁気制御

Dominik M Juraschek1,2, Prineha Narang1

  • 1Harvard John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02138, USA.

Science (New York, N.Y.)
|December 23, 2021
PubMed
まとめ

マグノンとフォノンの強い結合は 超高速光学ドライブの開発を可能にします この研究は次世代のデータストレージ技術における マグノン・フォノン相互作用の可能性を 探求しています

科学分野:

  • 凝縮物質物理学
  • 材料科学
  • 光電子機器

背景:

  • マグノン (スピン波) とフォノン (格子振動) は,磁気材料における基本的な刺激である.
  • これらの準粒子間の相互作用を理解し制御することは 新しいデバイスの機能に不可欠です

研究 の 目的:

  • 強力なマグノン・フォノン結合の高度な技術的な応用の可能性を調査する.
  • このコップリングメカニズムを超高速光学ドライブの開発に活用する可能性を検討する.

主な方法:

  • マグノン・フォノン相互作用の理論モデル化
  • 強い結合を示す磁気材料の実験的特徴づけ
  • 装置の性能のシミュレーションは,観測された結合強度に基づいています.

主要な成果:

  • 特定の物質システムにおけるマグノンとフォノン間の強い結合体制を証明した.
  • 光学データストレージに関連する材料特性に対するこのカップリングの影響を定量化しました.
  • マグノン・フォノン相互作用を最適化するための重要なパラメータを特定した.

結論:

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  • 次の世代の超高速光学ドライブを 作るための有望な経路を示しています
  • 材料とデバイスのアーキテクチャに関するさらなる研究は,この技術の実現を加速させることができます.