Aug 2026· Gels· Vol 12, pp. 694· 0 citations· 51 references
Medicine
Abstract
Long-lasting, high-strength plugging materials are required for deep profile control in low-permeability fractured reservoirs. In this study, a series of hyperbranched copolymer hydrogels was prepared through an aza-Michael addition-amidation-one-pot end-group coupling strategy. Linear alkylamines were used as cores to synthesize amino-terminated generation 1.0 G broom-shaped hyperbranched macromolecular backbones via a divergent route. The resulting backbones were subsequently crosslinked with linear α,ω-diepoxy-terminated poly(ethylene glycol), affording three structurally well-defined hydrogels, denoted as C2HG, C6HG, and C8HG. Structural and physicochemical characterization showed that all hydrogels possessed interconnected three-dimensional porous networks, good thermal stability, and a lower critical solution temperature of approximately 37 °C. Rheological analysis demonstrated predominantly elastic behavior, with the storage modulus (G′) consistently exceeding the loss modulus (G″), together with pronounced shear-thinning characteristics favorable for injection into deep, low-permeability formations. By varying the alkyl-chain length of the hyperbranched backbone, the balance between environmental tolerance and plugging performance could be effectively regulated. These findings establish a structure–property relationship between backbone hydrophobicity and hydrogel performance and demonstrate that PEG-crosslinked hyperbranched copolymer hydrogels are promising candidates for deep-profile control and water shutoff in high-salinity, low-permeability fractured reservoirs.
Polysaccharide-based hydrogels suffer from an inherent trade-off between mechanical strength and swelling capacity, along with poor structural stability under complex conditions, which severely restricts their industrial scalability. Herein, a targeted dual-side-chain modification strategy (hydroxypropylation combined...
Wenhao Zhang, Lun Chen, Chao Tian et al.· International Journal of Bio...· 1 citation
A mussel-inspired, dopamine-grafted curdlan hydrogel featuring a predominantly single-helical β-glucan architecture is reported, establishing a conformation-engineering strategy for β-glucan hydrogels and highlighting Cur-DA as a promising injectable, adhesive wound dressing.
Dongxue Lu, Tian Xiao, Luna Jiang et al.· ACS Applied Bio Materials· 0 citations
Developing hydrogels that simultaneously combine high mechanical robustness, antifreezing capability, and stable conductivity remains a substantial challenge for flexible sensing materials. Herein, we report a multifunctional conductive rotaxane-crosslinked hydrogel constructed from a γ-cyclodextrin/poly(ethylene gly...
Jie Ren, Ziqiong Zhou, Wenjing Zhang et al.· Macromolecules· 0 citations
Conductive hydrogels have emerged as promising candidates for stretchable and flexible electronic devices. However, simultaneously maintaining high electrical conductivity, sensitive strain responsiveness, and fatigue resistance under extreme deformation remains a major challenge. In this study, MnO2 was embedded int...
Rong-Zhe Yang, Shao-Yu Luan, Le-Xuan Su et al.· ACS Applied Polymer Material...· 0 citations
Hydrogels are attractive for flexible electronics and wearable sensors, yet their performance is severely limited at subzero temperatures due to ice crystallization, dehydration, and mechanical embrittlement. Here, we report a CaCl2-enhanced double-network (DN) hydrogel (BNP-x) that integrates excellent anti-freezing,...
Jizhe Feng, Yu-Meng Li, Xiaoai Yang et al.· ACS Applied Materials and In...· 0 citations
This work clearly illustrates the complex requirements for successful cell proliferation in hydrogels, emphasizing the need for not only biocompatible polymers, but also for optimal mechanical and precise microstructural properties.
F. J. Vazquez-Perez, Alejandro Moltó-Ramírez, C. Cifuentes-Jiménez et al.· International Journal of Bio...· 0 citations
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