Zuzanna J. Krysiak, Daniel Rybak, Tetuko Kurniawan, Anna Zakrzewska, Filippo Pierini
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The system utilizes the thermal sensitivity of P(NIPAAm-<i>co</i>-NIPMAAm) and the photothermal effect of gold nanorods (AuNRs) to achieve an on-demand controlled release mechanism within 6 min of near-infrared (NIR) light irradiation. The mechanical properties investigated in the compression test show significant improvement in MS, reaching 60 times greater value than the material without a PDMS ring. In addition, NIR irradiation for 15 min activated the antimicrobial properties, eliminating 99.9% of <i>E. Coli</i> and 100% of <i>S. Aureus</i>, thus presenting pathogen eradication. This platform provides a versatile methodology for developing next-generation smart materials, advanced delivery mechanisms, and multifunctional nanostructured composites. 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引用次数: 0
摘要
智能材料,特别是光响应材料,由于其可调谐的特性,已经成为一个关键的研究领域。它与对外界刺激作出物理或化学反应的能力有关。其中,光热响应材料引起了人们的极大兴趣。本研究的重点是开发由二苯甲酮修饰的聚二甲基硅氧烷(PDMS)环和由聚(n -异丙基丙烯酰胺-co- n -异丙基甲基丙烯酰胺)(P(NIPAAm-co-NIPMAAm))、明胶和明胶甲基丙烯酸酯(GelMA)组成的热敏核心组成的多层体系(MS)。该系统利用P(NIPAAm-co-NIPMAAm)的热敏性和金纳米棒(aunr)的光热效应,在近红外(NIR)光照射6分钟内实现按需控释机制。压缩试验中所研究的力学性能显示,MS的显著改善,达到60倍的数值比没有PDMS环的材料。此外,近红外照射15 min可激活抗菌性能,去除99.9%的大肠杆菌和100%的金黄色葡萄球菌,从而实现病原体根除。该平台为开发下一代智能材料、先进的输送机制和多功能纳米结构复合材料提供了一种通用的方法。这项工作强调了光敏材料的潜力,通过提供对释放动力学的精确控制和改进的材料性能,可以彻底改变软机器人、光学和执行器以及按需系统领域。
Light-Driven Structural Detachment and Controlled Release in Smart Antibacterial Multilayer Platforms
Smart materials, especially light-responsive, have become a key research area due to their tunable properties. It is related to the ability to undergo physical or chemical changes in response to external stimuli. Among them, photothermal responsive materials have attracted great interest. This study focuses on the development of a multilayer system (MS) consisting of benzophenone-modified polydimethylsiloxane (PDMS) ring and a thermo-responsive core made of poly(N-isopropylacrylamide-co-N-isopropylomethacrylamide) (P(NIPAAm-co-NIPMAAm)), gelatin, and gelatin methacrylate (GelMA). The system utilizes the thermal sensitivity of P(NIPAAm-co-NIPMAAm) and the photothermal effect of gold nanorods (AuNRs) to achieve an on-demand controlled release mechanism within 6 min of near-infrared (NIR) light irradiation. The mechanical properties investigated in the compression test show significant improvement in MS, reaching 60 times greater value than the material without a PDMS ring. In addition, NIR irradiation for 15 min activated the antimicrobial properties, eliminating 99.9% of E. Coli and 100% of S. Aureus, thus presenting pathogen eradication. This platform provides a versatile methodology for developing next-generation smart materials, advanced delivery mechanisms, and multifunctional nanostructured composites. This work highlights the potential of photosensitive materials to revolutionize the field of soft robotics, optics and actuators, and on-demand systems by providing precise control over release dynamics and improved material properties.
期刊介绍:
Macromolecular Materials and Engineering is the high-quality polymer science journal dedicated to the design, modification, characterization, processing and application of advanced polymeric materials, including membranes, sensors, sustainability, composites, fibers, foams, 3D printing, actuators as well as energy and electronic applications.
Macromolecular Materials and Engineering is among the top journals publishing original research in polymer science.
The journal presents strictly peer-reviewed Research Articles, Reviews, Perspectives and Comments.
ISSN: 1438-7492 (print). 1439-2054 (online).
Readership:Polymer scientists, chemists, physicists, materials scientists, engineers
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