Title | Strong Interfaces Enable Efficient Load Transfer for Strong, Tough, and Impact-Resistant Hydrogel Composites |
Author | |
Corresponding Author | Yang, Canhui |
Publication Years | 2022-07-01
|
DOI | |
Source Title | |
ISSN | 1944-8244
|
EISSN | 1944-8252
|
Abstract | Many biological hydrogels are mechanically robust to bear quasi-static and impact loads. In contrast, the mechanical properties of synthetic hydrogels against impact loads remain substantially unexplored, albeit their mechanical robustness under quasi-static loads has been extensively developed. Here, we report on the design and synthesis of strong, tough, and impact-resistant hydrogel composites by reinforcing Ca-alginate/polyacrylamide hydrogels with glass fabrics and conferring strong interfaces between the hydrogel matrix and the fibers. The fabric enables high elastic modulus, the hydrogel matrix enables large dissipation, and the strong interfaces enable efficient load transfer for synergistic strengthening and toughening, which is manifested by digital image correlation analyses. Under quasi-static loads, the hydrogel composite exhibits an elastic modulus of 35 MPa and a toughness of 206.7 kJ/m(2). Under impact loads, a piece of 7.7 g sample bears the impact of energy of 7.4 J and resists more than 100 cycles of consecutive impact of 600 mJ. As a proof-of-concept, a hydrogel composite as a safeguard to protect fragile glasses from impact is demonstrated. Because impact phenomena are universal, it is expected that the study on the impact of hydrogels will draw increasing attention. |
Keywords | |
URL | [Source Record] |
Indexed By | |
Language | English
|
SUSTech Authorship | First
; Corresponding
|
Funding Project | Natural Science Foundation of Guangdong Province[K20323004]
; Stable Support Plan Program of Shenzhen Natural Science Fund Grant[K21326303]
; Science, Technology, and Innovation Commission of Shenzhen Municipality[ZDSYS20210623092005017]
; Guangdong Innovative and Entrepreneurial Research Team Program[2016ZT06G587]
; Shenzhen Sci-Tech Fund[KYTDPT20181011104007]
|
WOS Research Area | Science & Technology - Other Topics
; Materials Science
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WOS Subject | Nanoscience & Nanotechnology
; Materials Science, Multidisciplinary
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WOS Accession No | WOS:000829210700001
|
Publisher | |
EI Accession Number | 20223112526941
|
EI Keywords | Elastic Moduli
; Glass
|
ESI Classification Code | Colloid Chemistry:801.3
; Chemical Products Generally:804
; Glass:812.3
; Materials Science:951
|
Data Source | Web of Science
|
Citation statistics |
Cited Times [WOS]:3
|
Document Type | Journal Article |
Identifier | http://kc.sustech.edu.cn/handle/2SGJ60CL/359482 |
Department | Department of Materials Science and Engineering |
Affiliation | 1.Southern Univ Sci & Technol, Dept Mech & Aerospace Engn, Shenzhen Key Lab Soft Mech & Smart Mfg, Shenzhen 518055, Guangdong, Peoples R China 2.Southern Univ Sci & Technol, Dept Mech & Aerospace Engn, Struct Dynam & Impact Lab, Shenzhen 518055, Guangdong, Peoples R China 3.Southern Univ Sci & Technol, Dept Mat Sci & Engn, Shenzhen 518055, Guangdong, Peoples R China |
First Author Affilication | Southern University of Science and Technology |
Corresponding Author Affilication | Southern University of Science and Technology |
First Author's First Affilication | Southern University of Science and Technology |
Recommended Citation GB/T 7714 |
Xue, Qiqi,He, Yunfeng,Zhang, Xiaoyu,et al. Strong Interfaces Enable Efficient Load Transfer for Strong, Tough, and Impact-Resistant Hydrogel Composites[J]. ACS Applied Materials & Interfaces,2022.
|
APA |
Xue, Qiqi.,He, Yunfeng.,Zhang, Xiaoyu.,Zhang, Xin.,Cai, Minkun.,...&Yang, Canhui.(2022).Strong Interfaces Enable Efficient Load Transfer for Strong, Tough, and Impact-Resistant Hydrogel Composites.ACS Applied Materials & Interfaces.
|
MLA |
Xue, Qiqi,et al."Strong Interfaces Enable Efficient Load Transfer for Strong, Tough, and Impact-Resistant Hydrogel Composites".ACS Applied Materials & Interfaces (2022).
|
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