Response of a novel all-solid-state sodium-based-electrolyte battery to quasi-static and dynamic stimuli

B. G. Christoff, Denys Marques, M. M. Maciel, P. Ataabadi, João Carmo, M. H. Braga, Rui M. Guedes, Marcílio Alves, Vonei Tita
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Abstract

In response to growing environmental and economic concerns, developing new technologies prioritising safety, sustainability, and reliability has become imperative. In the energy sector, batteries play an increasingly significant role in applications such as powering electronic devices and vehicles. In this context, lithium-ion batteries have raised environmental concerns, driving the exploration of alternative technologies. Sodium-based batteries have emerged as an attractive option due to their environmental and economic advantages, as well as their potential for multi-functional applications. This study investigates a novel battery developed by a research team at the University of Porto, with a specific focus on its strain-sensing capabilities for potential applications in damage detection of structures. The battery under investigation is a novel all-solid-state design, comprised of a sodium-ion ferroelectric electrolyte and zinc and copper as the negative and positive electrodes, respectively. A series of quasi-static and dynamic tests are conducted to qualitatively assess the piezoelectric behaviour of the battery. The consistent findings show that the battery generates a difference in the electric potential in response to mechanical stimuli, thus confirming its piezoelectric nature. Furthermore, the results demonstrate the battery can accurately detect the operating frequencies of a shaker, despite encountering inherent electromagnetic interference noise from the electrical grid during testing. These promising outcomes highlight the substantial potential of this emerging technology for a wide range of applications, including but not limited to structural health monitoring systems. Given its novelty, this technology presents multi-functional capabilities for diverse practical future applications, such as energy harvesting that leads to self-powered structural health monitoring systems.
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新型全固态钠电解质电池对准静态和动态刺激的响应
为了应对日益增长的环境和经济问题,开发安全、可持续和可靠的新技术已势在必行。在能源领域,电池在电子设备和汽车等应用中发挥着越来越重要的作用。在这种情况下,锂离子电池引发了环境问题,推动了对替代技术的探索。钠基电池因其环境和经济优势,以及多功能应用的潜力,已成为一种极具吸引力的选择。本研究调查了波尔图大学研究团队开发的一种新型电池,重点关注其应变传感功能在结构损伤检测中的潜在应用。所研究的电池是一种新型全固态设计,由钠离子铁电电解质以及分别作为负极和正极的锌和铜组成。通过一系列准静态和动态测试,对电池的压电行为进行了定性评估。一致的研究结果表明,电池在机械刺激下会产生电势差,从而证实了其压电性质。此外,结果表明,尽管在测试过程中会遇到电网固有的电磁干扰噪声,但电池仍能准确检测振动器的工作频率。这些令人鼓舞的成果凸显了这项新兴技术在广泛应用方面的巨大潜力,包括但不限于结构健康监测系统。鉴于其新颖性,该技术具有多功能能力,可用于未来的各种实际应用,如能量收集,从而实现自供电结构健康监测系统。
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来源期刊
CiteScore
4.70
自引率
8.30%
发文量
166
审稿时长
3 months
期刊介绍: The Journal of Materials: Design and Applications covers the usage and design of materials for application in an engineering context. The materials covered include metals, ceramics, and composites, as well as engineering polymers. "The Journal of Materials Design and Applications is dedicated to publishing papers of the highest quality, in a timely fashion, covering a variety of important areas in materials technology. The Journal''s publishers have a wealth of publishing expertise and ensure that authors are given exemplary service. Every attention is given to publishing the papers as quickly as possible. The Journal has an excellent international reputation, with a corresponding international Editorial Board from a large number of different materials areas and disciplines advising the Editor." Professor Bill Banks - University of Strathclyde, UK This journal is a member of the Committee on Publication Ethics (COPE).
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