仿生碳基人造肌肉具有精确和连续变形能力。

IF 16.3 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES National Science Review Pub Date : 2024-11-08 eCollection Date: 2025-01-01 DOI:10.1093/nsr/nwae400
Xiaodong Li, Meiping Li, Mingjia Zhang, Qin Liu, Deyi Zhang, Wenjing Liu, Xingru Yan, Changshui Huang
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引用次数: 0

摘要

面对微型机器人、智能控制和精准医学的发展,人工肌肉驱动系统必须满足精确控制、高稳定性、环境适应性和高集成度小型化的要求。碳材料具有重量轻、强度大、导电性好、柔韧性好等优点,在人造肌肉方面具有很大的潜力。受蝴蝶喙的启发,我们开发了一种碳基人造肌肉,氢取代石墨炔肌肉(HsGDY- m),使用新兴的具有不对称表面结构的氢取代石墨炔(HsGDY)薄膜高效制造。这种肌肉具有可逆、快速和连续可调的变形能力,类似于蝴蝶的喙,由碳键的转换触发。HsGDY- m的尺寸可以通过改变HsGDY薄膜的宽度从1 cm到100 μm来调整。我们的研究证明了HsGDY-M的稳定性和适应性,在低至-25°C的温度下保持性能。这种人造肌肉被成功地集成到机器人机械臂中,使其能够迅速调整姿势,举起高达自身重量11倍的物体。其有益的响应性是可转移的,使“惰性”物体如铜箔通过表面粘合转化为致动器。由于HsGDY-M具有超灵敏和快速变形的特点,因此利用HsGDY-M创建了人体手指弯曲运动的实时跟踪系统,实现了实时仿真和大手到小手的控制。我们的研究表明,HsGDY-M在推进智能机器人和精准医疗方面具有重要的前景。
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Bio-inspired carbon-based artificial muscle with precise and continuous morphing capabilities.

In the face of advancements in microrobotics, intelligent control and precision medicine, artificial muscle actuation systems must meet demands for precise control, high stability, environmental adaptability and high integration miniaturization. Carbon materials, being lightweight, strong and highly conductive and flexible, show great potential for artificial muscles. Inspired by the butterfly's proboscis, we have developed a carbon-based artificial muscle, hydrogen-substituted graphdiyne muscle (HsGDY-M), fabricated efficiently using an emerging hydrogen-substituted graphdiyne (HsGDY) film with an asymmetrical surface structure. This muscle features reversible, rapid and continuously adjustable deformation capabilities similar to the butterfly's proboscis, triggered by the conversion of carbon bonds. The size of the HsGDY-M can be tuned by changing the HsGDY film width from ∼1 cm to 100 μm. Our research demonstrates HsGDY-M's stability and adaptability, maintaining performance at temperatures as low as -25°C. This artificial muscle was successfully integrated into a robotic mechanical arm, allowing it to swiftly adjust its posture and lift objects up to 11 times its own weight. Its beneficial responsiveness is transferable, enabling the transformation of 'inert' objects like copper foil into actuators via surface bonding. Because of its super sensitive and rapid deformation, HsGDY-M was applied to create a real-time tracking system for human finger bending movements, achieving real-time simulation and large-hand-to-small-hand control. Our study indicates that HsGDY-M holds significant promise for advancing smart robotics and precision medicine.

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来源期刊
National Science Review
National Science Review MULTIDISCIPLINARY SCIENCES-
CiteScore
24.10
自引率
1.90%
发文量
249
审稿时长
13 weeks
期刊介绍: National Science Review (NSR; ISSN abbreviation: Natl. Sci. Rev.) is an English-language peer-reviewed multidisciplinary open-access scientific journal published by Oxford University Press under the auspices of the Chinese Academy of Sciences.According to Journal Citation Reports, its 2021 impact factor was 23.178. National Science Review publishes both review articles and perspectives as well as original research in the form of brief communications and research articles.
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