首页|用于电化学执行器的非金属电极材料研究进展

用于电化学执行器的非金属电极材料研究进展

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电化学执行器能够有效地将电能或化学能转化为机械能,在人造肌肉、仿生机器人和小型化医疗设备等领域中具有极大的应用前景.电化学执行器的组成包括电极层和电解质层,其中电极层主要决定执行器驱动性能和电化学性能.传统电化学执行器的电极材料主要由导电性好、驱动应力大的金属材料构成.然而,金属电极存在柔性低、循环稳定性差等问题,使得越来越多的研究人员开始关注非金属电极材料.本文重点介绍了用于电化学执行器的非金属电极材料的最新研究进展,首先介绍了电化学执行器的器件结构及驱动原理,其次根据电化学执行器电极材料的不同,分别从导电聚合物、碳材料、新型二维材料及其复合材料等方面进行了综述,讨论了各种非金属电极材料应用于执行器中的优缺点,最后对未来电化学执行器及其电极材料的发展趋势进行了展望.
Research progress of non-metallic electrode materials for electrochemical actuators
Electrochemical actuators have the remarkable ability to efficiently convert electrical or chemical energy into mechanical work.This capability has captured the attention of researchers in the fields of artificial muscles,bionic robotics,and miniaturized medical devices.A standard electrochemical actuator typically comprises electrode and electrolyte layers.The electrode layers play a pivotal role in determining the actuator's driving capability and electrochemical performance.Traditionally,metal materials were used for these electrodes,but they exhibited limited flexibility and poor cycle stability.Consequently,an increasing number of researchers are now exploring non-metallic electrode materials as a promising alternative.This paper presents a comprehensive overview of recent advancements in non-metallic electrode materials for electrochemical actuators.To begin,we introduce the device structures and operational principles of electrochemical actuators.When compared with other types of flexible actuators,including thermal,optical,and pneumatic actuators,electrochemical actuators offer distinct advantages such as lightweight construction,low voltage requirements,exceptional controllability,rapid response times,and extended durability.Subsequently,we delve into an examination of various electrode materials,encompassing conductive polymers,carbon-based materials,novel two-dimensional substances,and their composite counterparts.We thoroughly evaluate the advantages and disadvantages associated with non-metallic electrode materials deployed in these actuators.Conductive polymer materials are distinguished by their high ionic activity,expansive strain range,and excellent film-forming characteristics.However,they tend to exhibit relatively lower electrical conductivity,diminished strength,and reduced stiffness.In contrast,carbon materials offer superior electrical conductivity,cycle stability,and robust mechanical properties.Nonetheless,they possess a weaker ion storage capacity and can be more cost-intensive.It is noteworthy that although the conductivity of conductive polymers can be enhanced through doping,carbon materials generally surpass them in terms of conductivity.Furthermore,the Young's modulus of carbon materials significantly surpasses that of polymers.However,while carbon materials demonstrate a double-layer capacitance,conductive polymer materials exhibit a pronounced Faraday capacitance effect.This effect reinforces interactions with ions and facilitates ion insertion and removal.Emerging two-dimensional materials exhibit commendable electrical conductivity,structural order,and solvent compatibility.Nevertheless,they often necessitate integration with other materials to serve as effective film binders.Additionally,porous framework materials,increasingly harnessed to augment porosity and specific surface area,are now being incorporated into actuator electrode materials.Finally,we offer insight into the future trajectory of electrochemical actuators and electrode materials.The ongoing development of electrochemical actuators continues to elevate the demands placed on related materials and structural designs.By orchestrating composite integration of diverse materials,leveraging the unique strengths of individual components,we anticipate realizing optimal outcomes across electromechanical performance,mechanical properties,and electrochemical characteristics.Furthermore,ion actuators have transitioned from rudimentary electrochemical driving mechanisms to multifactor-driven systems.They have evolved from singular actuators to integrated arrays,culminating in sophisticated circuitry systems that incorporate various other electrically driven components,such as flexible sensors and memristors.This comprehensive integration endeavors to replicate human sensory perception,cognitive judgment,and physical action.As a result,it holds immense potential for applications in interactive human-machine interfaces and the advancement of intelligent robotics.

electrochemical actuatorsconductive polymer materialscarbon materialsnew two-dimensional materialscomposite materials

汪莎莎、李延昂、邓慧婵、郭志翔、阚玉和、曹洪涛、解令海

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南京邮电大学信息材料与纳米技术研究院,有机电子与信息显示国家重点实验室,南京 210023

淮阴师范学院化学化工学院,淮安 223300

电化学执行器 导电聚合物材料 碳材料 新型二维材料 复合材料

南京邮电大学自然科学基金南京邮电大学自然科学基金有机电子与信息显示国家重点实验室江苏省低维材料化学重点实验室2021年开放课题中国博士后科学基金江苏省高等学校基础科学(自然科学)研究国家留学基金

NY222157NY221085GZR2022010008JSKC200222022M71168422KJB430036202008320051

2024

科学通报
中国科学院国家自然科学基金委员会

科学通报

CSTPCD北大核心
影响因子:1.269
ISSN:0023-074X
年,卷(期):2024.69(4)
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