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A new constituent of electrostatic energy in semiconductors

机译:半导体中静电能的新成分

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The concept of electric energy is revisited in detail for semiconductors. We come to the conclusion that the main relationship used to calculate the energy related to the penetration of the electric field in semiconductors is missing a fundamental term. For instance, spatial derivate of the electrostatic energy using the traditional formula fails at giving the correct electrostatic force between semiconductor based capacitor plates, and reveals unambiguously the existence of an extra contribution to the standard electrostatic free energy. The additional term is found to be related to the generation of space charge regions which are predicted when combining electrostatics with semiconductor physics laws, such as for accumulation and inversion layers. On the contrary, no such energy is needed when relying on electrostatics only, as for instance when adopting the so-called full depletion approximation. The same holds for neutral and charged insulators that are still consistent with the customary definition, but these two examples are in fact singular cases. In semiconductors for instance, this additional energy can largely exceed the energy gained by the dipoles, thus becoming the dominant term. This unexpected result clearly asks for a generalization of electrostatic energy in matter in order to reconcile basic concepts of electrostatic energy in the framework of classical physics.
机译:电能的概念在半导体中有详细的介绍。我们得出的结论是,用于计算与电场在半导体中的渗透相关的能量的主要关系缺少一个基本术语。例如,使用传统公式的静电能的空间导数无法在基于半导体的电容器板之间提供正确的静电力,并且明确地揭示了对标准静电自由能的额外贡献。发现该附加术语与空间电荷区域的生成有关,该空间电荷区域是在将静电与半导体物理定律(例如累积层和反型层)结合时预测的。相反,仅当依靠静电时,例如采用所谓的全耗尽近似时,就不需要这种能量。对于中性绝缘体和带电绝缘体也是如此,它们仍然与常规定义一致,但是这两个示例实际上是单数情况。例如,在半导体中,这种额外的能量可能大大超过偶极子获得的能量,因此成为主导术语。这个出乎意料的结果显然要求对物质中的静电能进行概括,以便在经典物理学的框架内协调静电能的基本概念。

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