Self-healing and superstretchable conductors from hierarchical nanowire assemblies
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作者:
Pin Song
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机构:Hefei University of Technology,Anhui Province Key Laboratory of Advanced Catalytic Materials and Reaction Engineering, School of Chemistry and Chemical Engineering
Pin Song
Haili Qin
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机构:Hefei University of Technology,Anhui Province Key Laboratory of Advanced Catalytic Materials and Reaction Engineering, School of Chemistry and Chemical Engineering
Haili Qin
Huai-Ling Gao
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机构:Hefei University of Technology,Anhui Province Key Laboratory of Advanced Catalytic Materials and Reaction Engineering, School of Chemistry and Chemical Engineering
Huai-Ling Gao
Huai-Ping Cong
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机构:Hefei University of Technology,Anhui Province Key Laboratory of Advanced Catalytic Materials and Reaction Engineering, School of Chemistry and Chemical Engineering
Huai-Ping Cong
Shu-Hong Yu
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机构:Hefei University of Technology,Anhui Province Key Laboratory of Advanced Catalytic Materials and Reaction Engineering, School of Chemistry and Chemical Engineering
Shu-Hong Yu
机构:
[1] Hefei University of Technology,Anhui Province Key Laboratory of Advanced Catalytic Materials and Reaction Engineering, School of Chemistry and Chemical Engineering
[2] University of Science and Technology of China,Division of Nanomaterials and Chemistry, Department of Chemistry, Hefei National Laboratory for Physical Sciences at the Microscale, Collaborative Innovation Center of Suzhou Nano Science and Technology, CAS Ce
It is still a great challenge to improve deformability and fatigue-resistance of stretchable conductors when maintaining their high-level conductivity for practical use. Herein, a high-performance stretchable conductor with hierarchically ternary network and self-healing capability is demonstrated through in situ polymerizing N-isopropylacrylamide (NIPAM) on well-defined sulfur-containing molecule-modified Ag nanowire (AgNW) aerogel framework. Owing to hierarchical architecture from nanoscale to microscale and further to macroscale and strong interactions of polymer chains and AgNWs, the composite exhibits good conductivity of 93 S cm−1, excellent electromechanical stability up to superhigh tensile strain of 800% and strong fatigue-resistant ability through well accommodating the applied deformations and sharing external force in the network. Furthermore, the composite delivers a fast and strong healing capability induced by reversible Ag–S bonds, which enables the healed conductor to hold an impressive electromechanical property. These prominent demonstrations confirm this material as top performer for use as flexible, stretchable electronic devices.
机构:
South China Univ Technol, South China Adv Inst Soft Matter Sci & Technol, Guangzhou, Peoples R ChinaSouth China Univ Technol, South China Adv Inst Soft Matter Sci & Technol, Guangzhou, Peoples R China
Sun, Tao Lin
Cui, Kunpeng
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机构:
Hokkaido Univ, Inst Chem React Design & Discovery WPI ICReDD, Lab Soft & Wet Matter, Sapporo, Hokkaido, JapanSouth China Univ Technol, South China Adv Inst Soft Matter Sci & Technol, Guangzhou, Peoples R China
Cui, Kunpeng
SELF-HEALING AND SELF-RECOVERING HYDROGELS,
2020,
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