In order to prepare a chitosan-based antibacterial film with excellent mechanical properties and study its properties, the tape casting method was used to prepare the composite film from chitosan, glycerin and thyme essential oil. Through single factor test and response surface optimization test, the tensile strength and elongation at break were used as response indicators to prepare the composite film with better mechanical properties, and the physical properties, water vapor permeability, solubility and bacteriostasis of the composite film were measured, and the characterization of the microstructure of the composite films. The results showed that the optimized composite film ratio was 1.5% chitosan, 0.5% glycerol, 0.5% thyme essential oil, 18.69 MPa tensile strength, 19.01% elongation at break, 2.52 g/h·m water vapor permeability, and 23.78% solubility. The composite film had a good antibacterial effect and increased the DPPH radical scavenging rate to 52.4%. Its overall performance was superior to that of chitosan single film. The chitosan/thyme essential oil composite film can reduce the weight loss rate, hardness loss rate and POD activity of blueberry fruits during storage. Additionally, it effectively inhibits the decline of soluble solids content, anthocyanin content, and Vc content, while slowing the increase of MDA content, thereby maintaining fruit quality and enhancing the fresh-keeping effect. Adding thyme essential oil to prepare composite film provides a reference for the fresh-keeping research of freshly cut fruits and vegetables.
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http://dx.doi.org/10.1038/s41598-025-92267-3 | DOI Listing |
ACS Appl Mater Interfaces
March 2025
State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, China.
High-performance radiation-resistant lubricating materials (RRLMs) with nanostructures hold great promise for enhancing the irradiation tolerance because of their sinking effect of boundaries on defects. Despite recent advances, challenges remain in finding a nanostructure that exhibits both superior irradiation tolerance and excellent lubricant properties. Unlike traditional nanostructured composite materials that required complex predesign, herein, a MoS nanocrystals (NCs)/amorphous dual phase in subirradiation saturation (SIS) state was spontaneously formed during irradiation, exhibiting high irradiation resistance under the synergistic effect of "defect traps" by interfaces and edge dislocation.
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State Key Laboratory of Optoelectronic Materials and Technologies, School of Electronics and Information Technology, Sun Yat-sen University, Guangzhou 510275, China.
Stretchability and flexibility are essential characteristics for high-performance electromagnetic interference (EMI) shielding materials in wearable and smart devices. However, achieving these mechanical properties while also maintaining high EMI shielding effectiveness (SE) for shielding materials remains a significant challenge. Here, a stretchable patterned carbon nanotube (CNT) array composite film, reinforced with two-dimensional (2D) nanomaterials (TiCT and graphene), is fabricated using a straightforward scraping method.
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Institute of Wide Bandgap Semiconductors and Future Lighting, Academy for Engineering & Technology, Fudan University, Shanghai 200433, China.
The progression of SiC MOSFET technology from planar to trench structures requires optimized gate oxide layers within the trench to enhance device performance. In this study, we investigated the interface characteristics of HfO and SiO/HfO gate dielectrics grown by atomic layer deposition (ALD) on SiC trench structures. The trench structure morphology was revealed using scanning electron microscopy (SEM).
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February 2025
School of Materials Science and Engineering, Chang'an University, Xi'an 710061, China.
This paper reports on the effect of the micro-morphological characteristics of stainless steel electrodes on vacuum breakdown properties under the action of a strong electric field generated by high-power electric pulses. Using chemical passivation modification and atomic layer deposition (ALD) technology, alumina composite films were prepared on the surface of the stainless steel electrodes to reshape the surface microstructure of the electrodes. The surface morphology features of the electrodes were characterized in detail.
View Article and Find Full Text PDFBME Front
March 2025
Department of Biomedical Engineering, Fatih Sultan Mehmet Vakıf University, Istanbul, Turkey.
This study aims to develop and characterize electroactive hydrogels based on reduced bacterial cellulose (BC) and TiCT -MXene for their potential application in wound healing and real-time monitoring. The integration of TiCT -MXene into BC matrices represents a novel approach to creating multifunctional hydrogels that combine biocompatibility, electrical conductivity, and mechanical durability. These properties make the hydrogels promising candidates for advanced wound care and real-time monitoring applications.
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