Electrochemically-driven actuators: from materials to mechanisms and from performance to applications†

IF 40.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Chemical Society Reviews Pub Date : 2024-05-09 DOI:10.1039/D3CS00906H
Lixue Yang, Yiyao Zhang, Wenting Cai, Junlong Tan, Heather Hansen, Hongzhi Wang, Yan Chen, Meifang Zhu and Jiuke Mu
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Abstract

Soft actuators, pivotal for converting external energy into mechanical motion, have become increasingly vital in a wide range of applications, from the subtle engineering of soft robotics to the demanding environments of aerospace exploration. Among these, electrochemically-driven actuators (EC actuators), are particularly distinguished by their operation through ion diffusion or intercalation-induced volume changes. These actuators feature notable advantages, including precise deformation control under electrical stimuli, freedom from Carnot efficiency limitations, and the ability to maintain their actuated state with minimal energy use, akin to the latching state in skeletal muscles. This review extensively examines EC actuators, emphasizing their classification based on diverse material types, driving mechanisms, actuator configurations, and potential applications. It aims to illuminate the complicated driving mechanisms of different categories, uncover their underlying connections, and reveal the interdependencies among materials, mechanisms, and performances. We conduct an in-depth analysis of both conventional and emerging EC actuator materials, casting a forward-looking lens on their trajectories and pinpointing areas ready for innovation and performance enhancement strategies. We also navigate through the challenges and opportunities within the field, including optimizing current materials, exploring new materials, and scaling up production processes. Overall, this review aims to provide a scientifically robust narrative that captures the current state of EC actuators and sets a trajectory for future innovation in this rapidly advancing field.

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电化学驱动致动器:从材料到机制,从性能到应用
软致动器是将外部能量转化为机械运动的关键,在从软机器人的微妙工程到要求苛刻的航空航天探索环境等各种应用中都变得越来越重要。其中,电化学驱动致动器(EC 致动器)因其通过离子扩散或插层引起的体积变化而与众不同。这些致动器具有显著的优势,包括在电刺激下的精确变形控制、不受卡诺效率的限制,以及能够以最小的能量消耗维持致动状态,类似于骨骼肌的闩锁状态。这篇综述广泛研究了电致发动器,强调了它们基于不同材料类型、驱动机制、致动器配置和潜在应用的分类。其目的是阐明不同类别的复杂驱动机制,揭示它们之间的内在联系,并揭示材料、机制和性能之间的相互依存关系。我们深入分析了传统和新兴的导电体致动器材料,以前瞻性的视角审视了它们的发展轨迹,并精确定位了可用于创新和性能提升战略的领域。我们还探讨了该领域面临的挑战和机遇,包括优化现有材料、探索新材料和扩大生产工艺规模。总之,本综述旨在提供科学可靠的叙述,以捕捉电子致动器的现状,并为这一快速发展的领域设定未来的创新轨迹。
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来源期刊
Chemical Society Reviews
Chemical Society Reviews 化学-化学综合
CiteScore
80.80
自引率
1.10%
发文量
345
审稿时长
6.0 months
期刊介绍: Chemical Society Reviews is published by: Royal Society of Chemistry. Focus: Review articles on topics of current interest in chemistry; Predecessors: Quarterly Reviews, Chemical Society (1947–1971); Current title: Since 1971; Impact factor: 60.615 (2021); Themed issues: Occasional themed issues on new and emerging areas of research in the chemical sciences
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