Laboratory for Multifunctional Materials Department of Materials ETH Zürich Vladimir-Prelog-Weg 5 Zürich 8093 Switzerland.
Life Cycle Thinking Group Department of Graphic Design and Engineering Projects Faculty of Engineering in Bilbao University of the Basque Country (UPV/EHU) Bilbao 48013 Spain.
Adv Sci (Weinh). 2021 May 6;8(12):2004814. doi: 10.1002/advs.202004814. eCollection 2021 Jun.
Transient technology seeks the development of materials, devices, or systems that undergo controlled degradation processes after a stable operation period, leaving behind harmless residues. To enable externally powered fully transient devices operating for longer periods compared to passive devices, transient batteries are needed. Albeit transient batteries are initially intended for biomedical applications, they represent an effective solution to circumvent the current contaminant leakage into the environment. Transient technology enables a more efficient recycling as it enhances material retrieval rates, limiting both human and environmental exposures to the hazardous pollutants present in conventional batteries. Little efforts are focused to catalog and understand the degradation characteristics of transient batteries. As the energy field is a property-driven science, not only electrochemical performance but also their degradation behavior plays a pivotal role in defining the specific end-use applications. The state-of-the-art transient batteries are critically reviewed with special emphasis on the degradation mechanisms, transiency time, and biocompatibility of the released degradation products. The potential of transient batteries to change the current paradigm that considers batteries as harmful waste is highlighted. Overall, transient batteries are ready for takeoff and hold a promising future to be a frontrunner in the uptake of circular economy concepts.
瞬态技术旨在开发材料、器件或系统,使其在稳定运行期后经历受控的降解过程,留下无害的残留物。为了使外部供电的全瞬态器件能够比无源器件运行更长时间,需要瞬态电池。尽管瞬态电池最初旨在用于生物医学应用,但它们是解决当前污染物泄漏到环境中的有效解决方案。瞬态技术通过提高材料回收率来实现更有效的回收,从而限制了人类和环境对传统电池中存在的危险污染物的暴露。人们很少努力对瞬态电池的降解特性进行编目和理解。由于能源领域是一门以性能为导向的科学,因此不仅电化学性能,而且其降解行为在定义特定的最终用途应用方面也起着关键作用。本文重点介绍了瞬态电池的最新研究进展,特别强调了降解机制、释放的降解产物的瞬态时间和生物相容性。瞬态电池有可能改变当前将电池视为有害废物的范式。总的来说,瞬态电池已经准备好起飞,并有望成为采用循环经济概念的领跑者。