Shedding light on and comparing three different mathematical models of the optical conductivity concept

Gharam A. Alharshan, H.A. Saudi, Shams A.M. Issa, Hesham M.H. Zakaly, Hosam M. Gomaa
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Abstract

The optical response in materials offers valuable insights into their properties, especially regarding interband transitions, distinct from direct current responses. By adjusting the frequency of electromagnetic radiation, interband transitions and energy band mappings can be explored, even in materials like graphene. Optical conductivity, which measures a material’s ability to conduct electricity under the influence of light, is pivotal across physics, materials science, and engineering. It quantifies a material’s efficiency in absorbing and transporting electromagnetic energy as photons. Typically described by Drude’s model, optical conductivity has applications in diverse fields, from designing specific optical properties in materials to optimizing solar cells and developing photonic devices. Plasmonics, meta-materials, and renewable energy research also benefit from understanding and controlling optical conductivity. The optical conductivity problem centers on comprehending materials’ electrical interactions with light across the optical spectrum, which is vital for various technologies. Theoretical models, simulations, and experiments address this problem, aiming to develop tunable materials and enhance theoretical models for accurate prediction of optical properties. Mathematical models, such as Maxwell’s equations, the Lorentz-Drude model, and the Hosam-Heba model, elucidate optical conductivity, aiding in understanding light-material interactions and predicting material behavior under electromagnetic radiation. Each model offers a unique perspective on optical conductivity, with different theoretical foundations and mathematical formulations that can be applied depending on the specific properties of the material being studied. Understanding and manipulating optical conductivity is foundational to utilizing light across various technological applications.
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揭示并比较光学传导概念的三种不同数学模型
材料的光学响应为了解其特性提供了宝贵的视角,尤其是有别于直流响应的带间转换。通过调整电磁辐射的频率,可以探索带间跃迁和能带映射,即使在石墨烯等材料中也是如此。光导率衡量的是材料在光的影响下导电的能力,在物理学、材料科学和工程学中举足轻重。它量化了材料吸收和传输光子电磁能的效率。光传导性通常由 Drude 模型来描述,它应用于各个领域,从设计材料的特定光学特性到优化太阳能电池和开发光子设备。等离子体学、元材料和可再生能源研究也得益于对光传导性的理解和控制。光传导性问题的核心是理解材料在整个光谱范围内与光的电相互作用,这对各种技术都至关重要。理论模型、模拟和实验解决了这一问题,旨在开发可调谐材料并改进理论模型,以准确预测光学特性。麦克斯韦方程、洛伦兹-德鲁兹模型和霍萨姆-赫巴模型等数学模型阐明了光学传导性,有助于理解光与材料之间的相互作用,并预测材料在电磁辐射下的行为。每种模型都从不同的理论基础和数学公式出发,根据所研究材料的具体特性,为光学传导性提供了独特的视角。要在各种技术应用中利用光,了解和操纵光学传导性是基础。
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