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Applications of electrostatic capacitance and charging

机译:静电电容和充电的应用

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摘要

The capacitance of an arbitrarily shaped object is calculated with the same second-kind integral equation method used for computing static and dynamic polarizabilities. The capacitance is simply the dielectric permittivity multiplied by the area of the object and divided by the squared norm of the Neumann-Poincaré operator eigenfunction corresponding to the largest eigenvalue. The norm of this eigenfunction varies slowly with shape thus enabling the definition of two scale-invariant shape factors and perturbative calculations of capacitance. The result is extended to a special class of capacitors in which the electrodes are the equipotential surfaces generated by the equilibrium charge on the object. This extension allows analytical expressions of capacitance for confocal spheroidal capacitors and finite cylinders. Moreover, a second order formula for thin constant-thickness capacitors is given with direct applications for capacitance of membranes in living cells and of supercapacitors. For axisymmetric geometries, a fast and accurate numerical method is provided.
机译:使用用于计算静态和动态极化率的第二种积分方程方法,可以计算任意形状物体的电容。电容就是介电常数乘以物体的面积,再除以对应于最大特征值的Neumann-Poincaré算子特征函数的平方范数。本征函数的范数随形状缓慢变化,因此可以定义两个尺度不变的形状因子并进行电容的微扰计算。结果扩展到一类特殊的电容器,其中电极是由物体上的平衡电荷产生的等势面。这种扩展允许对共聚焦球面电容器和有限圆柱体的电容进行解析表达式。此外,给出了薄的恒定厚度电容器的二阶公式,直接用于活细胞和超级电容器中膜的电容。对于轴对称几何,提供了一种快速而准确的数值方法。

著录项

  • 来源
    《Journal of Applied Physics 》 |2013年第22期| 1-8| 共8页
  • 作者单位

    National Institute for Research and Development in Microtechnologies-IMT, 126A, Erou Iancu Nicolae Street, 077190 Bucharest, Romania|c|;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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