用于光通信的压电器件的进展

IF 1.9 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Physica Status Solidi A-applications and Materials Science Pub Date : 2024-09-12 DOI:10.1002/pssa.202400298
Agata Roszkiewicz, Magdalena Garlińska, Agnieszka Pregowska
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引用次数: 0

摘要

压电材料能够将机械能转化为电能,反之亦然,这使得它们在从医药到能源工业的广泛应用中备受青睐。压电材料在光通信中的应用通常与光信号的调制或其他操作有关。本文将探讨压电器件领域的最新进展及其在光通信中的应用前景。在光通信中应用压电器件可以对光信号进行动态控制、调制和操纵,从而实现更可靠的传输。事实证明,将基于人工智能的算法与压电技术相结合,可以提高这些设备的性能,包括优化压电调制、自适应信号处理、控制光学元件,以及提高能效水平。它可以提高信号质量,减轻干扰,减少与噪声有关的问题。此外,这种技术融合还能提高光通信系统的安全性。最后,确定了未来可能的研究方向。
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Advancements in Piezoelectric‐Enabled Devices for Optical Communication
The ability of piezoelectric materials to convert mechanical energy into electric energy and vice versa has made them desirable in the wide range of applications that oscillate from medicine to the energetics industry. Their implementation in optical communication is often connected with the modulation or other manipulations of the light signals. In this article, the recent advancements in the field of piezoelectrics‐based devices and their promising benefits in optical communication are explored. The application of piezoelectrics‐based devices in optical communication allows dynamic control, modulation, and manipulation of optical signals that lead to a more reliable transmission. It turns out that a combination of artificial‐intelligence‐based algorithms with piezoelectrics can enhance the performance of these devices, including optimization of piezoelectric modulation, adaptive signal processing, control of optical components, and increase the level of energy efficiency. It can enhance signal quality, mitigate interference, and reduce noise‐connected issues. Moreover, this technological fusion can increase the security of optical communication systems. Finally, the potential future research lines are determined.
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来源期刊
CiteScore
3.70
自引率
5.00%
发文量
393
审稿时长
2 months
期刊介绍: The physica status solidi (pss) journal group is devoted to the thorough peer review and the rapid publication of new and important results in all fields of solid state and materials physics, from basic science to applications and devices. Among the largest and most established international publications, the pss journals publish reviews, letters and original articles, as regular content as well as in special issues and topical sections.
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