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题名

3D Highly Stretchable Liquid Metal/Elastomer Composites with Strain-Enhanced Conductivity

作者
通讯作者Wang, Hong; Wang, Qing; Zhang, Sulin
共同第一作者Fang, Ruyue; Yao, Bin
发表日期
2023-10-01
DOI
发表期刊
ISSN
1616-301X
EISSN
1616-3028
摘要

["Current stretchable conductors, often composed of elastomeric composites infused with rigid conductive fillers, suffer from limited stretchability and durability, and declined conductivity with stretching. These limitations hinder their potential applications as essential components such as interconnects, sensors, and actuators in stretchable electronics and soft machines. In this context, an innovative elastomeric composite that incorporates a 3D network of liquid metal (LM), offering exceptional stretchability, durability, and conductivity, is introduced. The mechanics model elucidates how the interconnected 3DLM architecture imparts softness and stretchability to the composites, allowing them to withstand tensile strains of up to 500% without rupture. The relatively low surface-to-volume ratio of the 3DLM network limits the reforming of the oxide layer during cyclic stretch, thereby contributing to low permanent strain and enhanced durability. Additionally, the 3D architecture facilitates crack blunting and stress delocalization, elevating fracture resistance, while simultaneously establishing continuous conductive pathways that result in high conductivity. Notably, the conductivity of the 3DLM composite increases with strain during substantial stretching, highlighting its strain-enhanced conductivity. In comparison to other LM-based composites featuring 0D LM droplets, the 3DLM composite stands out with superior properties.","Herein, a novel elastomeric composite is developed that integrates a 3D network of liquid metal, resulting in outstanding stretchability, durability, and conductivity. The mechanics model demonstrates the enhanced flexibility and fracture resistance brought about by the interconnected 3DLM architecture. Furthermore, the study emphasizes the conductivity enhancement under strain of the 3DLM composites.image"]

关键词
相关链接[来源记录]
收录类别
SCI ; EI
语种
英语
重要成果
NI论文
学校署名
通讯
资助项目
R.F. and B.Y. contributed equally to this work. Q.W. and S.Z. acknowledge the supports of the National Science Foundation (CMMI 1933398 and ECCS 2035051).[
WOS研究方向
Chemistry ; Science & Technology - Other Topics ; Materials Science ; Physics
WOS类目
Chemistry, Multidisciplinary ; Chemistry, Physical ; Nanoscience & Nanotechnology ; Materials Science, Multidisciplinary ; Physics, Applied ; Physics, Condensed Matter
WOS记录号
WOS:001088169900001
出版者
EI入藏号
20234414977768
EI主题词
Durability ; Flexible electronics ; Fracture ; Functional materials ; Network architecture ; Strain
EI分类号
Metallurgy:531.1 ; Electronic Equipment, General Purpose and Industrial:715 ; Materials Science:951
ESI学科分类
MATERIALS SCIENCE
来源库
Web of Science
引用统计
被引频次[WOS]:5
成果类型期刊论文
条目标识符http://sustech.caswiz.com/handle/2SGJ60CL/582824
专题工学院_材料科学与工程系
工学院_力学与航空航天工程系
作者单位
1.Penn State Univ, Dept Engn Sci & Mech, University Pk, PA 16802 USA
2.Penn State Univ, Dept Mat Sci & Engn, University Pk, PA 16802 USA
3.Southern Univ Sci & Technol, Dept Mat Sci & Engn, Shenzhen Engn Res Ctr Novel Elect Informat Mat &, Guangdong 518055, Peoples R China
4.Southern Univ Sci & Technol Shenzhen, Guangdong Prov Key Lab Funct Oxide Mat & Devices, Guangdong 518055, Peoples R China
5.Southern Univ Sci & Technol, Dept Mech & Aerosp Engn, Shenzhen 518055, Guangdong, Peoples R China
6.Penn State Univ, Dept Biomech Engn, University Pk, PA 16802 USA
通讯作者单位材料科学与工程系;  南方科技大学
推荐引用方式
GB/T 7714
Fang, Ruyue,Yao, Bin,Chen, Tianwu,et al. 3D Highly Stretchable Liquid Metal/Elastomer Composites with Strain-Enhanced Conductivity[J]. ADVANCED FUNCTIONAL MATERIALS,2023.
APA
Fang, Ruyue.,Yao, Bin.,Chen, Tianwu.,Xu, Xinwei.,Xue, Dingchuan.,...&Zhang, Sulin.(2023).3D Highly Stretchable Liquid Metal/Elastomer Composites with Strain-Enhanced Conductivity.ADVANCED FUNCTIONAL MATERIALS.
MLA
Fang, Ruyue,et al."3D Highly Stretchable Liquid Metal/Elastomer Composites with Strain-Enhanced Conductivity".ADVANCED FUNCTIONAL MATERIALS (2023).
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