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Electrical Current01:10

Electrical Current

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Electrical current is defined as the rate at which charge flows. When there is a large current present, such as that used to run a refrigerator, a large amount of charge moves through the wire in a small amount of time. If the current is small, such as that used to operate a handheld calculator, a small amount of charge moves through the circuit over a long period of time. The SI unit for current is the ampere (A), named for the French physicist André-Marie Ampère (1775–1836).
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Current Density01:21

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The total amount of current flowing through one unit value of a cross-sectional area is referred to as current density. If the current flow is uniform, the amount of current flowing through a conductor is the same at all points along the conductor, even if the conductor area varies. The current density consists of the local magnitude and direction of the charge flow, which varies from point to point. Current density is measured in amperes per meter square, and direction is defined as the net...
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Since eddy currents occur only in conductors, magnets can separate metals from other materials. For example, in a recycling center, trash is dumped in batches down a ramp, beneath which lies a powerful magnet. Conductors in the trash are slowed by eddy currents, while nonmetals in the trash move on, separating from the metals. This works for all metals, not just ferromagnetic ones.
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Ampère's law, in its usual form, does not work in places where the current changes with time and is not steady. Thus, Maxwell suggested including an additional contribution, called the displacement current, Id, to the real conduction current I.
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Electric charge is the most fundamental quantity in an electric circuit. The effects of electric charge are encountered daily, such as when a wool sweater sticks to the human body or when a person receives a shock while walking on a carpet.
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In parallel electrical connections, resistors are linked between the same pair of nodes, creating an equal voltage across each resistor. Kirchhoff's current law is applied to these connections, establishing that the sum of currents through these resistors equals the source current. Utilizing Ohm's law, the source current is determined as the product of the source voltage and the sum of the reciprocals of individual resistances. This relationship simplifies the process of finding the current...
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可切换的Schottky接口:同时增强输出电流和减少泄漏电流

Guirong Su1, Sha Yang1, Shuang Li1

  • 1Nano and Heterogeneous Materials Center, School of Materials Science and Engineering , Nanjing University of Science and Technology , Nanjing 210094 , Jiangsu , China.

Journal of the American Chemical Society
|January 5, 2019
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概括

通过控制分子吸附状态,研究人员开发了有机Schottky二极管,具有改进的反向偏差特征. 这克服了基于的二极管的局限性,实现了低泄漏电流和高输出.

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科学领域:

  • 材料科学
  • 凝聚物质物理学
  • 纳米科学

背景情况:

  • 金属半导体接触对纳米电子非常重要,Schottky二极管提供快速切换但高反向泄漏.
  • 传统的基于的Schottky二极管在改善反向偏差特征而不会影响前向性能方面面临物理限制.

研究的目的:

  • 调查有机基二极管在克服传统肖特基二极管的局限性的潜力.
  • 使用可逆分子吸附状态来提高二极管性能的新方法.

主要方法:

  • 密度函数理论 (DFT) 模拟用于模拟分子吸附和肖特基屏障高度.
  • 不平衡格林函数 (NEGF) 运输计算以验证纠正行为.

主要成果:

  • 对于Cu的不同吸附状态,已经证明了不同的Scottky屏障高度.
  • 化学吸收状态产生了更高的肖特基屏障,显著降低了反向泄漏电流.
  • 一个被物理吸收的状态导致了较低的肖特基屏障,使得前向偏差下的输出电流更大.

结论:

  • 分子吸附状态之间的可逆过渡为设计具有优异反向偏差特性的有机肖特基二极管提供了可行的策略.
  • 这种方法可以同时改善低泄漏电流和高输出电流,解决纳米电子设备设计的关键挑战.