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典型文献
Self-Exfoliation of Flake Graphite for Bioinspired Compositing with Aramid Nanofiber toward Integration of Mechanical and Thermoconductive Properties
文献摘要:
Flexible yet highly thermoconductive materials are essential for the development of next-generation flexible electronic devices.Herein,we report a bioinspired nanostructured film with the integration of large ductility and high thermal conductivity based on self-exfoliated pristine graphene and three-dimensional aramid nanofiber network.A self-grinding strategy to directly exfoliate flake graphite into few-layer and few-defect pristine graphene is successfully developed through mutual shear friction between graphite particles,generating largely enhanced yield and productivity in comparison to normal liquid-based exfoliation strategies,such as ultrasonication,high-shear mixing and ball milling.Inspired by nacre,a new bioin-spired layered structural design model containing three-dimensional nanofiber network is proposed and implemented with an interconnected aramid nanofiber network and high-loading graphene nanosheets by a developed continuous assembly strategy of sol-gel-film transformation.It is revealed that the bioinspired film not only exhibits nacre-like ductile deformation behavior by releasing the hidden length of curved aramid nanofibers,but also possesses good thermal transport ability by directionally conducting heat along pristine graphene nanosheets.
文献关键词:
作者姓名:
Limei Huang;Guang Xiao;Yunjing Wang;Hao Li;Yahong Zhou;Lei Jiang;Jianfeng Wang
作者机构:
College of Materials Science and Engineering,Hunan University,Changsha 410082,People's Republic of China;College of Chemistry and Chemical Engineering,Hunan University,Changsha 410082,People's Republic of China;CAS Key Laboratory of Bio-Inspired Materials and Interface Sciences,Technical Institute of Physics and Chemistry Chinese,Academy of Sciences,Beijing 100190,People's Republic of China
引用格式:
[1]Limei Huang;Guang Xiao;Yunjing Wang;Hao Li;Yahong Zhou;Lei Jiang;Jianfeng Wang-.Self-Exfoliation of Flake Graphite for Bioinspired Compositing with Aramid Nanofiber toward Integration of Mechanical and Thermoconductive Properties)[J].纳微快报(英文),2022(10):235-247
A类:
Exfoliation,Flake,Compositing,Aramid,Thermoconductive,thermoconductive,exfoliate
B类:
Self,Graphite,Bioinspired,Nanofiber,toward,Integration,Mechanical,Properties,Flexible,yet,highly,materials,are,essential,development,next,generation,flexible,electronic,devices,Herein,report,bioinspired,nanostructured,film,integration,ductility,thermal,conductivity,self,exfoliated,pristine,graphene,three,dimensional,aramid,network,grinding,strategy,directly,flake,graphite,into,few,defect,successfully,developed,through,mutual,shear,friction,between,particles,generating,largely,enhanced,yield,productivity,comparison,normal,liquid,exfoliation,strategies,such,ultrasonication,mixing,ball,milling,Inspired,by,nacre,new,layered,structural,design,model,containing,proposed,implemented,interconnected,loading,nanosheets,continuous,assembly,sol,transformation,It,revealed,that,not,only,exhibits,like,ductile,deformation,behavior,releasing,hidden,length,curved,nanofibers,but,also,possesses,good,transport,ability,directionally,conducting,heat,along
AB值:
0.618533
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