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Faraday's Law01:10

Faraday's Law

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Faraday's law state that the induced emf is the negative change in the magnetic flux per unit of time. Any change in the magnetic field or change in the orientation of the area of the coil with respect to the magnetic field induces a voltage (emf). The magnetic flux measures the number of magnetic field lines through a given surface area. Magnetic flux is estimated from the integral of the dot product of the magnetic field vector and the area vector. The negative sign describes the...
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A Faraday disk dynamo is a DC generator, producing an emf that is constant in time. It consists of a conducting disk that rotates with a constant angular velocity in the magnetic field, perpendicular to the disk's plane. The rotation of the disk causes a change in magnetic flux, which induces an emf, causing opposite charges to develop on the rim and in the center of the disk. The polarity of the induced emf can be determined by the direction of the magnetic field and the direction of the...
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Oxidation Numbers

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In redox reactions, the transfer of electrons occurs between reacting species. Electron transfer is described by a hypothetical number called the oxidation number (or oxidation state). It represents the effective charge of an atom or element, which is assigned using a set of rules.
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Pulse01:16

Pulse

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When the heart pumps blood out, arterial elastic fibers play a crucial role in sustaining a high-pressure gradient. They expand to accommodate the received blood and then recoil - a process known as the pulse that can be either manually palpated or electronically quantified. Despite a reduction in its effect with increased distance from the heart, elements of the pulse's systolic and diastolic components persist, observable even at the arteriole level.
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Pulse01:05

Pulse

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The pulse is one of the most fundamental physiological indicators of the body's cardiovascular health. It is the rhythmic expansion and contraction of the arterial walls in response to the pressure generated by the heart's pumping action.
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Colors and Magnetism

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Color in Coordination Complexes
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  2. 通过可见光和特拉赫兹脉冲光对e-氧化铁磁纳米粒子进行快速法拉第旋转
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  2. 通过可见光和特拉赫兹脉冲光对e-氧化铁磁纳米粒子进行快速法拉第旋转

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通过可见光和特拉赫兹脉冲光对e-氧化铁磁纳米粒子进行快速法拉第旋转

Shin-Ichi Ohkoshi1, Kenta Imoto1, Asuka Namai1

  • 1Department of Chemistry, School of Science , The University of Tokyo , 7-3-1 Hongo , Bunkyo-ku , Tokyo 113-0033 , Japan.

Journal of the American Chemical Society
|January 16, 2019

在PubMed 上查看摘要

概括
此摘要是机器生成的。

化学合成的磁性纳米材料表现出对光敏感的磁性. 可见光触发磁化反转,而太赫兹 (THz) 光则诱导超快的磁光效应,可用于先进的磁器件.

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科学领域:

  • 旋转化学
  • 光学材料科学
  • 纳米磁性

背景情况:

  • 光或电磁波反应磁性是旋转化学和光学材料科学的关键领域.
  • 通过外部刺激开发具有可控制磁性质的材料对于下一代技术至关重要.

研究的目的:

  • 研究基于铁氧化物的磁性纳米材料中的光诱导磁化逆转和超快磁光效应.
  • 探索这些材料在高密度磁性存储器和高速磁性设备中的潜在应用.

主要方法:

  • 用--替代 ε-Fe2O3 (GTC-ε-Fe2O3) 薄膜和 ε-Fe2O3 纳米粒子的化学合成.
  • 用可见光脉冲激光和太赫兹 (THz) 脉冲激光进行辐射.
  • 使用随机兰道-利夫希茨-吉尔伯特计算的理论演示.

主要成果:

  • 可见光脉冲激光辐射诱导GTC-ε-Fe2O3薄膜中的磁化反转,切换法拉第效应信号.
  • 对 ε-Fe2O3 薄膜的脉冲THz 光辐射导致了 400 fs 内的超快法拉第旋转.
  • 随机兰道-利夫希茨-吉尔伯特计算验证了观察到的超快磁光学动态.

结论:

  • 铁氧化物磁性纳米材料具有显著的对光的反应性.
  • 这些材料对高密度磁性存储介质和高速磁电路设备的应用具有前景.