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

电池(电) 背景(考古学) 计算机科学 电气工程 汽车工程 工程类 功率(物理) 物理 古生物学 量子力学 生物
作者
Bruno Guilherme Christoff,Denys Marques,Maísa Milanez Ávila Dias Maciel,pouria Bahrami Ataabadi,J. P. Carmo,Maria Helena Braga,Rui Miranda Guedes,Marcı́lio Alves,Volnei Tita
标识
DOI:10.1177/14644207241247732
摘要

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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