石墨烯超表面:透镜应用、设计策略和制造技术的进展

Meisam Esfandiari, Xiaojing Lv, Shaghayegh Chamani, Yang Yang
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引用次数: 0

摘要

本文综述了石墨烯基超表面透镜的最新进展,阐述了其创新的设计原理、先进的制造技术和优越的光学性能。石墨烯独特的电学、机械和光学特性,加上超材料和超表面的多功能,导致了高效和动态透镜系统的发展。这些镜头表现出非凡的能力,包括可调焦距、增强的光调制和改进的光探测灵敏度。这些特性使它们非常适合高分辨率成像、精密传感和下一代电信等不同领域的变革性应用。该综述深入分析了用于制造这些透镜的最先进的方法,如化学气相沉积、先进光刻和纳米制造,以实现纳米级精度和功能集成。此外,还对大规模生产的可扩展性、制造技术的复杂性以及石墨烯在不同环境条件下的长期稳定性等挑战进行了严格的研究。在探索这些方面时,综述确定了未来研究的关键方向,强调需要跨学科合作以克服当前的局限性。通过解决这些挑战并利用材料科学和纳米技术的进步,石墨烯基超表面透镜有可能彻底改变光学透镜系统和光子技术的未来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Graphene metasurfaces: Advances in lens applications, design strategies, and fabrication techniques

Graphene metasurfaces: Advances in lens applications, design strategies, and fabrication techniques
This review comprehensively examines the recent advancements in graphene-based metasurface lenses, shedding light on their innovative design principles, advanced manufacturing techniques, and superior optical properties. Graphene's exceptional electrical, mechanical, and optical characteristics, combined with the versatile functionality of metamaterials and metasurfaces, have led to the development of highly efficient and dynamic lens systems. These lenses demonstrate remarkable capabilities, including tunable focal lengths, enhanced light modulation, and improved photodetection sensitivity. Such properties render them highly suitable for transformative applications in diverse fields like high-resolution imaging, precision sensing, and next-generation telecommunications. The review provides an in-depth analysis of the state-of-the-art methods used in the fabrication of these lenses, such as chemical vapor deposition, advanced lithography, and nanomanufacturing, to achieve nanoscale precision and functional integration. Moreover, the challenges associated with large-scale production scalability, fabrication techniques' complexity, and graphene's long-term stability under varying environmental conditions are critically examined. In exploring these aspects, the review identifies key directions for future research, emphasizing the need for interdisciplinary collaboration to overcome current limitations. By addressing these challenges and leveraging advancements in material science and nanotechnology, graphene-based metasurface lenses have the potential to revolutionize the future of optical lens systems and photonic technologies.
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