Ultralight, Heat-Insulated, and Tough PVA Hydrogel Hybridized with SiO 2 @cellulose Nanoclaws Aerogel via the Synergy of Hydrophilic and Hydrophobic Interfacial Interactions.
Yuqi XieZhaohui LiYawen ZhangYunjie LuJianming ZhangLu ZongPublished in: Small (Weinheim an der Bergstrasse, Germany) (2023)
Lightweight porous hydrogels provide a worldwide scope for functional soft mateirals. However, most porous hydrogels have weak mechanical strength, high density (>1 g cm -3 ), and high heat absorption due to weak interfacial interactions and high solvent fill rates, which severely limit their application in wearable soft-electronic devices. Herein, an effective hybrid hydrogel-aerogel strategy to assemble ultralight, heat-insulated, and tough polyvinyl alcohol (PVA)/SiO 2 @cellulose nanoclaws (CNCWs) hydrogels (PSCG) via strong interfacial interactions with hydrogen bonding and hydrophobic interaction is demonstrated. The resultant PSCG has an interesting hierarchical porous structure from bubble template (≈100 µm), PVA hydrogels networks introduced by ice crystals (≈10 µm), and hybrid SiO 2 aerogels (<50 nm), respectively. PSCG shows unprecedented low density (0.27 g cm -3 ), high tensile strength (1.6 MPa) & compressive strength (1.5 MPa), excellent heat-insulated ability, and strain-sensitive conductivity. This lightweight porous and tough hydrogel with an ingenious design provides a new way for wearable soft-electronic devices.
Keyphrases
- tissue engineering
- ionic liquid
- hyaluronic acid
- drug delivery
- wound healing
- high density
- heat stress
- room temperature
- molecular dynamics simulations
- drug release
- metal organic framework
- heart rate
- photodynamic therapy
- magnetic nanoparticles
- aqueous solution
- reduced graphene oxide
- extracellular matrix
- electron transfer
- highly efficient
- liquid chromatography
- mass spectrometry
- alcohol consumption