Surface hydrophobization of hydrogels via interface dynamics-induced network reconfiguration
Bo Yi,
Tianjie Li,
Boguang Yang,
Sirong Chen,
Jianyang Zhao,
Pengchao Zhao,
Kunyu Zhang,
Yi Wang (),
Zuankai Wang () and
Liming Bian ()
Additional contact information
Bo Yi: South China University of Technology
Tianjie Li: The Chinese University of Hong Kong
Boguang Yang: The Chinese University of Hong Kong
Sirong Chen: South China University of Technology
Jianyang Zhao: South China University of Technology
Pengchao Zhao: South China University of Technology
Kunyu Zhang: South China University of Technology
Yi Wang: The Chinese University of Hong Kong
Zuankai Wang: The Hong Kong Polytechnic University
Liming Bian: South China University of Technology
Nature Communications, 2024, vol. 15, issue 1, 1-13
Abstract:
Abstract Effective and easy regulation of hydrogel surface properties without changing the overall chemical composition is important for their diverse applications but remains challenging to achieve. We report a generalizable strategy to reconfigure hydrogel surface networks based on hydrogel–substrate interface dynamics for manipulation of hydrogel surface wettability and bioadhesion. We show that the grafting of hydrophobic yet flexible polymeric chains on mold substrates can significantly elevate the content of hydrophobic polymer backbones and reduce the presence of polar groups in hydrogel surface networks, thereby transforming the otherwise hydrophilic hydrogel surface into a hydrophobic surface. Experimental results show that the grafted highly dynamic hydrophobic chains achieved with optimal grafting density, chain length, and chain structure are critical for such substantial hydrogel surface network reconfiguration. Molecular dynamics simulations further reveal the atomistic details of the hydrogel network reconfiguration induced by the dynamic interface interactions. The hydrogels prepared using our strategy show substantially enhanced bioadhesion and transdermal delivery compared with the hydrogels of the same chemical composition but fabricated via the conventional method. Our findings provide important insights into the dynamic hydrogel–substrate interactions and are instrumental to the preparation of hydrogels with custom surface properties.
Date: 2024
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DOI: 10.1038/s41467-023-44646-5
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