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Space Charge Regions in Fixed Charge Membranes and the Associated Property of Capacitance

机译:固定电荷膜的空间电荷区域和电容的相关特性

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摘要

The Poisson-Boltzmann equation, which was derived by Shockley in his treatment of the p-n semiconductor junction at equilibrium, is applied to fixed charge ionic membranes. The fixed charges in ionic membranes play the same role as “doping” ions in semiconductors, the major difference between the two systems being that in the former the mobile particles are ions while in the latter the particles are electrons and phenomenological particles, “holes.” An important consequence of spatial gradients of fixed charge is the presence of space charge regions which give rise to an intrinsic electric field and potential. These quantities are established first for the single “lattice” thus providing a continuous treatment of the Donnan equilibrium invoked by Teorell-Meyer-Sievers in their treatment of fixed charge membranes. It is shown further that when a positive and negative membrane are juxtaposed, the space charge region in the “junction” so formed provides a mechanism for the storage of electrical energy. Thus while the system is basically a “conductor” the presence of transition regions of fixed charge give rise to the additional property of capacitance. Experimental data are presented on ionic and p-n junctions. The implications of this mechanism for the physical basis of capacitance in biological cells are discussed.
机译:肖克利在平衡状态下处理p-n半导体结时推导的Poisson-Boltzmann方程适用于固定电荷离子膜。离子膜中的固定电荷与半导体中的“掺杂”离子具有相同的作用,这两个系统之间的主要区别在于,前者中的可移动粒子是离子,而后者中的粒子是电子和现象粒子,即“空穴”。 ”固定电荷的空间梯度的重要结果是空间电荷区域的存在,这会引起固有电场和电势。首先为单个“晶格”建立这些量,从而连续处理Teorell-Meyer-Sievers在固定电荷膜的处理中调用的Donnan平衡。进一步示出,当将正膜和负膜并置时,如此形成的“结”中的空间电荷区域提供了用于存储电能的机制。因此,虽然系统基本上是“导体”,但固定电荷的过渡区域的存在引起了电容的附加特性。实验数据是关于离子和p-n结的。讨论了这种机制对于生物细胞中电容的物理基础的意义。

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