智能锂基电池的传感器创新:进步、机遇和潜在挑战

IF 26.6 1区 材料科学 Q1 Engineering
Jamile Mohammadi Moradian, Amjad Ali, Xuehua Yan, Gang Pei, Shu Zhang, Ahmad Naveed, Khurram Shehzad, Zohreh Shahnavaz, Farooq Ahmad, Balal Yousaf
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引用次数: 0

摘要

锂基电池(LiBs)由于其无与伦比的能量密度、最小的自放电率和良好的循环寿命,是电动汽车、可再生能源系统和便携式电子设备运行中不可或缺的组成部分。然而,随着时间的推移,锂电池固有的安全风险和性能下降需要通过复杂的电池管理系统(BMS)进行持续监测。本文全面分析了智能lib传感器技术的现状,重点介绍了它们的进步、机遇和潜在挑战。传感器根据其应用分为两大类:安全监测和性能优化。安全监测传感器,包括温度、压力、应变、气体、声学和磁传感器,专注于检测可能导致危险情况的条件。性能优化传感器,如基于光学和基于电化学的传感器,监测诸如电荷状态和健康状态等因素,强调操作效率和寿命。该综述还强调了将这些传感器与先进算法和控制方法集成在一起以优化充放电循环的重要性。纳米技术、无线传感器网络、小型化和机器学习算法驱动的潜在进步也进行了讨论。然而,为了充分发挥LiB传感器技术的潜力,需要解决传感器小型化、功耗、成本效率以及与现有BMS的兼容性等方面的挑战。这篇全面的综述为智能电池传感器创新的现状和未来方向提供了有价值的见解,指导了进一步的研究和开发工作,以提高电池的性能、可靠性和安全性。集成智能lib的先进传感器技术:在BMS中集成非光学多参数、光学和电化学传感器,以实现更高的安全性、更高的效率、早期预警机制和TR预防。纳米技术、无线传感器网络、小型化和先进算法将推动电池的潜在进步,解决提高电池性能和可靠性的关键挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Sensors Innovations for Smart Lithium-Based Batteries: Advancements, Opportunities, and Potential Challenges

Sensors Innovations for Smart Lithium-Based Batteries: Advancements, Opportunities, and Potential Challenges

Lithium-based batteries (LiBs) are integral components in operating electric vehicles to renewable energy systems and portable electronic devices, thanks to their unparalleled energy density, minimal self-discharge rates, and favorable cycle life. However, the inherent safety risks and performance degradation of LiB over time impose continuous monitoring facilitated by sophisticated battery management systems (BMS). This review comprehensively analyzes the current state of sensor technologies for smart LiBs, focusing on their advancements, opportunities, and potential challenges. Sensors are classified into two primary groups based on their application: safety monitoring and performance optimization. Safety monitoring sensors, including temperature, pressure, strain, gas, acoustic, and magnetic sensors, focus on detecting conditions that could lead to hazardous situations. Performance optimization sensors, such as optical-based and electrochemical-based, monitor factors such as state of charge and state of health, emphasizing operational efficiency and lifespan. The review also highlights the importance of integrating these sensors with advanced algorithms and control approaches to optimize charging and discharge cycles. Potential advancements driven by nanotechnology, wireless sensor networks, miniaturization, and machine learning algorithms are also discussed. However, challenges related to sensor miniaturization, power consumption, cost efficiency, and compatibility with existing BMS need to be addressed to fully realize the potential of LiB sensor technologies. This comprehensive review provides valuable insights into the current landscape and future directions of sensor innovations in smart LiBs, guiding further research and development efforts to enhance battery performance, reliability, and safety.

Integration of advanced sensor technologies for smart LiBs: integrating non-optical multi-parameter, optical-based, and electrochemical sensors within the BMS to achieve higher safety, improved efficiency, early warning mechanisms, and TR prevention. Potential advancements are driven by nanotechnology, wireless sensor networks, miniaturization, and advanced algorithms, addressing key challenges to enhance battery performance and reliability.

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来源期刊
Nano-Micro Letters
Nano-Micro Letters NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
32.60
自引率
4.90%
发文量
981
审稿时长
1.1 months
期刊介绍: Nano-Micro Letters is a peer-reviewed, international, interdisciplinary, and open-access journal published under the SpringerOpen brand. Nano-Micro Letters focuses on the science, experiments, engineering, technologies, and applications of nano- or microscale structures and systems in various fields such as physics, chemistry, biology, material science, and pharmacy.It also explores the expanding interfaces between these fields. Nano-Micro Letters particularly emphasizes the bottom-up approach in the length scale from nano to micro. This approach is crucial for achieving industrial applications in nanotechnology, as it involves the assembly, modification, and control of nanostructures on a microscale.
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