人工肌肉
执行机构
材料科学
仿生学
纳米技术
计算机科学
设计要素和原则
块(置换群论)
软质材料
智能材料
软机器人
超分子化学
钥匙(锁)
系统工程
机械工程
智能聚合物
材料设计
建筑
设计策略
超分子聚合物
高效能源利用
仿生材料
机械设计
控制工程
纳米-
智能决策支持系统
能量(信号处理)
人工智能
组分(热力学)
标识
DOI:10.1002/adma.202514781
摘要
Artificial muscles are essential components in the advancement of next-generation soft robotics, biomedical devices, and adaptive wearables. While conventional fiber-based actuators often rely on multi-material assemblies and complex interfacial engineering, their performance is limited by structural heterogeneity and low-efficient energy coupling. This review highlights the emerging paradigm of single-fiber or in-fiber artificial muscle design, where actuation functionality is intrinsically encoded within the molecular architecture of individual fibers. We comprehensively examine state-of-the-art material systems such as phase-transition materials, block copolymer self-assemblies, mechanically interlocked polymers, covalent supramolecular hybrids, and woven polymer networks. Particular emphasis is placed on the structure-property-function relationships that govern the actuation strain, stress output, response speed, and long-term durability. We also propose a unified framework for evaluating single fiber actuator performance based on key metrics and critically discuss manufacturing challenges, scalability, and integration with smart sensing system. This review provides a roadmap for molecular design of the high-performance artificial muscle, offering new strategies for intelligent actuation and soft material systems in real-world applications.
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