Zitterbewegung and its effects on electrons in semiconductors
arXiv:cond-mat/0411488 · doi:10.1103/PhysRevB.72.085217
Abstract
An analogy between the band structure of narrow gap semiconductors and the Dirac equation for relativistic electrons in vacuum is used to demonstrate that semiconductor electrons experience a Zitterbewegung (trembling motion). Its frequency is and its amplitude is , where corresponds to the Compton wavelength in vacuum ( is the energy gap, is the effective mass and cm/sec). Once the electrons are described by a two-component spinor for a specific energy band there is no Zitterbewegung but the electrons should be treated as extended objects of size . Possible consequences of the above predictions are indicated.
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