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Typically, the tailorable versatility of biomass aerogels is attributed to the tunable internal molecular structure, providing broad application prospects. Herein, a simple and novel preparation strategy for developing multifunctional dual-network chitosan/itaconic acid (CSI) aerogel with tunability by using freeze-drying and vacuum heat treatment techniques. By regulating the temperature and duration of amidation reaction, electrostatic interactions between chitosan (CS) and itaconic acid (IA) was abstemiously converted into amide bond in frozen aerogel, with IA acting as an efficient in-situ cross-linking agent, which yielded CSI aerogels with different electrostatic/covalent cross-linking ratios. Heat treatment and tuning of the covalent cross-linking degree of CSI aerogel changed their microstructure and density, which led to enhanced performance. For example, the specific modulus of CSI1.5-160 °C-5 h (71.69 ± 2.55 MPa·cm·g) increased by 119 % compared to that of CSI1.5 (32.73 ± 0.718 MPa·cm·g), converting the material from superhydrophilic to hydrophobic (124° ± 3.6°), exhibiting favorable stability and heat transfer performance. In addition, part of -NH of CS was retained in the electrostatic cross-linked network, endowing the aerogel with antibacterial properties. The findings of this study provide insights and a reliable strategy for fabricating biomass aerogel with good comprehensive performance via ingenious structural design and simple regulation methods.
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http://dx.doi.org/10.1016/j.ijbiomac.2023.128052 | DOI Listing |
Int J Biol Macromol
September 2025
College of Ethnic Pharmacy, Chengdu University of Traditional Chinese Medicine, Chengdu, Sichuan, China. Electronic address:
Wound healing is often hindered by bacterial infection, oxidative stress, and bleeding. Traditional dressings cannot simultaneously regulate multiple microenvironments. To address the shortcomings of traditional dressings, this study constructed a dual-network photothermal responsive multifunctional hydrogel OBCTCu based on four natural ingredients, including Bletilla striata polysaccharide (BSP), chitosan (CS), tannic acid (TA), and Cu.
View Article and Find Full Text PDFJ Mater Chem B
September 2025
College of Biomass Science and Engineering, Sichuan University, Chengdu 610065, China.
Postoperative peritoneal adhesion, driven by inflammatory response and fibrotic deposition, remains the most common complication following abdominal surgeries, with limited effective solutions. Herein, a dual-network hydrogel patch (GPSB) is developed for effective peritoneal adhesion prevention through interpenetrating a gelatin network with a zwitterionic polysulfobetaine (PSB) network. The biodegradable gelatin network is dynamically crosslinked zinc ion (Zn)-polyphenol coordination, endowing the patch with inherent antibacterial and pro-healing activities.
View Article and Find Full Text PDFACS Appl Mater Interfaces
August 2025
Center for Molecular Science and Engineering, College of Science, Northeastern University, Shenyang 110819, P. R. China.
This study presents a dual-network composite gel synthesized from polyacrylamide (PAM), polysaccharides (sodium alginate/xanthan gum), and deep eutectic solvents (DES), demonstrating enhanced performance for flexible strain sensors. The composite gel incorporated a gallium-indium alloy (EGaIn) as a conductive filler to enable high stretchability, mechanical toughness, and superior electrical properties. The gel fabrication employed a solvent substitution strategy wherein water content was systematically replaced by DES, ensuring nonvolatility and structural stability.
View Article and Find Full Text PDFJ Mater Chem B
August 2025
Zhejiang Key Laboratory of Plastic Modification and Processing Technology, College of Materials Science& Engineering, Zhejiang University of Technology, Hangzhou, 310014, P. R. China.
Poor diabetic wound healing represents a significant threat to public health. Key obstacles include heightened oxidative stress resulting from the hyperglycemic microenvironment and increased susceptibility to bacterial infections. These factors synergistically exacerbate one another, creating a self-perpetuating cycle that hampers healing.
View Article and Find Full Text PDFInt J Biol Macromol
September 2025
Beijing Key Lab of Special Elastomeric Composite Materials, Beijing Institute of Petrochemical Technology, Beijing, China. Electronic address:
Developing novel dressings with superior antibacterial properties to resist bacterial infections during wound healing remains a significant challenge. Hydrogels have emerged as prominent materials due to their excellent biocompatibility and adjustable functionality, and are widely applied in the field of wound therapy. However, the majority of hydrogels exhibit suboptimal mechanical properties, which hinder their practical application.
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