TY - JOUR
T1 - Crystalline-Constrain Enables Preparation of Hierarchical Porous Hydrogels with High Porosity and Good Mechanics
AU - Yuan, Haohang
AU - Zhao, Xiaoduo
AU - Zhao, Weiyi
AU - Zhang, Yunlei
AU - Ye, Qian
AU - Liu, Shujuan
AU - Yu, Bo
AU - Ma, Shuanhong
AU - Zhou, Feng
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2025/3/11
Y1 - 2025/3/11
N2 - Porous hydrogels with high porosity can achieve high matter diffusion and transport efficiency. Achieving both ultrahigh porosity and excellent mechanical properties in porous hydrogels remains a long-standing challenge, considerably hindering their use in high load-bearing elastic scaffolds such as artificial articular cartilages and meniscus replacements. Herein, a novel crystalline-constrained multi-solvents template preparation method is proposed for synthesizing highly porous hierarchical polyvinyl alcohol hydrogels (P-exogel) with excellent mechanical properties. The enhanced mechanical characteristics of the P-exogel are attributed to the crystallinity-induced network anti-swelling effect of the pore walls during dynamic template removal. The P-exogel exhibits a hierarchical and interconnected pore structure with high porosity (81.69%), resulting in ultrafast surface wetting with water (in less than 10 ms). Moreover, the P-exogel exhibits good tensile breaking strength (2.47 ± 0.53 MPa) with elongation of more than 400%, high toughness (5.61 ± 1.65 MJ m−3), and excellent elastic recovery performance. The pre-crack testing results further confirm the ultrahigh fracture resistance (18.73 ± 2.52 KJ m−2) of the P-exogel, which almost surpasses those of all reported and commercial porous hydrogels. The unique network microstructure of the P-exogel ensures its highly efficient and reversible liquid absorption and release ability during dynamic loading–unloading processes, confirming its great application potential in high load-bearing elastic scaffolds.
AB - Porous hydrogels with high porosity can achieve high matter diffusion and transport efficiency. Achieving both ultrahigh porosity and excellent mechanical properties in porous hydrogels remains a long-standing challenge, considerably hindering their use in high load-bearing elastic scaffolds such as artificial articular cartilages and meniscus replacements. Herein, a novel crystalline-constrained multi-solvents template preparation method is proposed for synthesizing highly porous hierarchical polyvinyl alcohol hydrogels (P-exogel) with excellent mechanical properties. The enhanced mechanical characteristics of the P-exogel are attributed to the crystallinity-induced network anti-swelling effect of the pore walls during dynamic template removal. The P-exogel exhibits a hierarchical and interconnected pore structure with high porosity (81.69%), resulting in ultrafast surface wetting with water (in less than 10 ms). Moreover, the P-exogel exhibits good tensile breaking strength (2.47 ± 0.53 MPa) with elongation of more than 400%, high toughness (5.61 ± 1.65 MJ m−3), and excellent elastic recovery performance. The pre-crack testing results further confirm the ultrahigh fracture resistance (18.73 ± 2.52 KJ m−2) of the P-exogel, which almost surpasses those of all reported and commercial porous hydrogels. The unique network microstructure of the P-exogel ensures its highly efficient and reversible liquid absorption and release ability during dynamic loading–unloading processes, confirming its great application potential in high load-bearing elastic scaffolds.
KW - crystalline-constrain
KW - good mechanical strength
KW - hierarchical pore structure
KW - high porosity
KW - porous hydrogels
UR - http://www.scopus.com/inward/record.url?scp=86000434249&partnerID=8YFLogxK
U2 - 10.1002/adfm.202416898
DO - 10.1002/adfm.202416898
M3 - 文章
AN - SCOPUS:86000434249
SN - 1616-301X
VL - 35
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 11
M1 - 2416898
ER -