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A Field-Based Model of the Photon: Lorentz-Covariant Quantization

机译:光子的基于场的模型:洛伦兹-协变量量化

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The macroscopic Maxwell equations, which quantum mechanics uses to define radiation fields, are shown to be in violation of the special principle of relativity. This is resolved by applying Maxwell's equations microscopically to each of the n constituent wave trains of a macroscopic wave. It is then shown that spontaneous emission may be accounted for by subjecting a bound electron to the combined influence of the n superimposed wave trains. If emission is induced by a coherent wave, then frequency-doubling phenomena are predicted. Several examples are cited, showing the pervasiveness of frequency doubling in nature. The evidence suggests further that quantum statistics is due to microscopic field fluctuations rather than photon counting. A manifestly covariant description of an electron transition is obtained in the form of a Lagrangian density, which is then quantized by applying appropriate limits of integration. A simple shift in these limits yields an independent field in free space, or photon, which is bounded by parallel surfaces separated by a distance equal to the wavelength and period. The implications of this photon model upon interference phenomena and the inverse square law are briefly discussed. A test of the inverse square law is proposed.
机译:量子力学用来定义辐射场的宏观麦克斯韦方程被证明违反了相对论的特殊原理。通过将麦克斯韦方程组微观地应用于宏观波的n个组成波列中的每一个,可以解决此问题。然后表明,自发发射可以通过使束缚电子经受n个叠加波列的组合影响来解决。如果发射是由相干波引起的,则可以预测倍频现象。列举了几个例子,说明了自然倍频的普遍性。证据进一步表明,量子统计是由于微观场的波动而不是光子计数。电子跃迁的明显协变描述以拉格朗日密度的形式获得,然后通过应用适当的积分极限对其进行量化。这些限制的简单移动会在自由空间或光子中产生一个独立的场,该场由平行的表面界定,平行的表面之间的距离等于波长和周期。简要讨论了该光子模型对干扰现象和平方反比定律的影响。提出了平方反比定律的检验。

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