Do We Manipulate Photons or Diffractive EM Waves to Generate Structured Light?

C. Roychoudhuri
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Abstract

In the domain of light emissions, quantum mechanics has been an immensely successful guiding tool for us. In the propagation of light and optical instrument design, Huygens-Fresnel diffraction integral (HFDI) (or its advanced versions) and Maxwell’s wave equation are continuing to be the essential guiding tools for optical scientists and engineers. In fact, most branches of optical science and engineering, like optical instrument design, image processing, Fourier optics, Holography, etc., cannot exist without using the foundational postulates behind the Huygens-Fresnel diffraction integral. Further, the field of structured light is also growing where phases and the state of polarizations are manipulated usually with suitable classical macro-devices to create wave fronts that restructured through light-matter interactions through these devices. Mathematical modeling of generating such complex wave fronts generally follows classical concepts and classical macro tools of physical optics. Some of these complex light beams can impart mechanical angular momentum and spin-like properties to material particles inserted inside these structured beams because of their electromagnetic dipolar properties and/or structural anisotropy. Does that mean these newly structured beams have acquired new quantum properties without being generated through quantum devices and quantum transitions? In this chapter, we bridge the classical and quantum formalism by defining a hybrid photon (HP). HP is a quantum of energy, hν, at the initial moment of emission. It then immediately evolves into a classical time-finite wave packet, still transporting the original energy, hν, with a classical carrier frequency ν (oscillation of the E-vector). This chapter will raise enquiring questions whether all these observed “quantum-like” behaviors are manifestations of the joint properties of interacting material particles with classical EM waves or are causal implications of the existence of propagation of “indivisible light quanta” with exotic properties like spin, angular momentum, etc.
我们是否操纵光子或衍射电磁波来产生结构光?
在光发射领域,量子力学对我们来说是一个非常成功的指导工具。在光的传播和光学仪器的设计中,惠更斯-菲涅耳衍射积分(HFDI)(或其先进版本)和麦克斯韦波动方程仍然是光学科学家和工程师必不可少的指导工具。事实上,光学科学和工程的大多数分支,如光学仪器设计、图像处理、傅立叶光学、全息学等,如果没有惠更斯-菲涅耳衍射积分背后的基本假设,就不可能存在。此外,结构光领域也在不断发展,通常使用合适的经典宏观设备来操纵相位和偏振状态,以创建通过这些设备通过光-物质相互作用重新构建的波前。产生这种复杂波前的数学模型一般遵循物理光学的经典概念和经典宏观工具。其中一些复杂光束可以赋予插入这些结构光束中的材料粒子机械角动量和自旋性质,因为它们的电磁偶极性和/或结构各向异性。这是否意味着这些新结构的光束在没有通过量子设备和量子跃迁产生的情况下获得了新的量子特性?在本章中,我们通过定义混合光子(hybrid photon, HP)架起了经典和量子形式主义的桥梁。HP是发射初始时刻的能量量子,hν。然后,它立即演变成经典的时间有限波包,仍然传输原始能量hν,具有经典的载频ν (e矢量的振荡)。本章将提出疑问,所有这些观察到的“类量子”行为是与经典电磁波相互作用的物质粒子的联合特性的表现,还是具有自旋、角动量等奇异特性的“不可分光量子”传播存在的因果含义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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