| Literature DB >> 35423243 |
Zongjian Liu1, Ling Liu2, Zhenggen Zhong2, Yuanyuan Ran1, Jianing Xi1, Jin Wang2.
Abstract
Supramolecular hydrogels are a type of hydrogel cross-linked by non-chemical bonds and they have been widely applied in the field of smart systems, sensors, tissue engineering, and controlled drug delivery. Most supramolecular hydrogels are formed by soluble molecules, polymers, and metal ions. In this work, supramolecular hydrogels self-assembled between two insoluble nano building blocks (ISNBBs), graphene oxide (GO) and amino-functionalized silica nanoparticles (SiO2-NH2), have been discovered and synthesized. The gelation conditions of the two ISNBBs have been investigated. A step further, ultralight hybrid silica aerogels are obtained by supercritical drying of the physical hydrogels. No visible volume shrinkage is observed, due to the fact that the hydrogel networks are formed by rigid ISNBBs. Thus the hybrid aerogels possess ultralow density (down to 7.5 mg cm-3), high specific surface areas (178.6 m2 g-1), and extremely high porosity (99.6%). The present work shows an alternative strategy to design and synthesize supramolecular hydrogels and aerogels using predetermined building blocks, together with designable morphology and physical properties for the target aerogels. This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35423243 PMCID: PMC8695017 DOI: 10.1039/d1ra00418b
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Fig. 1(a) Schematic description of the synthesis of SiO2–NH2; (b) GO–SiO2–NH2 hybrid supramolecular hydrogels; and (c) the corresponding GO–SiO2–NH2 hybrid aerogels.
Fig. 2(a) SEM image of SiO2–NH2 nanoparticles; (b) nitrogen absorption–desorption isotherm of the SiO2–NH2 nanoparticles.
Fig. 3Gelation conditions for the SiO2–GO hybrid supramolecular hydrogels: black solid circle (●) indicated that supramolecular hydrogels were formed; red solid circle () indicated that hydrogel cannot be formed; blue circle () indicated that precipitates were formed; the light blue region suggest that supramolecular hydrogel may be formed.
Fig. 4FT-IR spectra of (a) GO; (b) GO5–SiO210 hybrid aerogels; (c) GO5–SiO215 hybrid aerogels; (d) GO5–SiO220 hybrid aerogels; (e) SiO2–NH2 nanoparticles.
Fig. 5SEM images of the GO5–SiO215 hybrid aerogels, blue arrows pointed to the SiO2–NH2 nanoparticles.
Fig. 6(a) Nitrogen absorption–desorption isotherm of the hybrid aerogels; (b) pore distribution of the hybrid aerogels.