Yapa Piumika, Munaweera Imalka, Weerasekera Manjula M, Weerasinghe Laksiri
Department of Chemistry, Faculty of Applied Sciences, University of Sri Jayewardenepura Nugegoda 10250 Sri Lanka
Department of Microbiology, Faculty of Medical Sciences, University of Sri Jayewardenepura Nugegoda 10250 Sri Lanka
RSC Adv. 2024 Oct 25;14(46):33919-33940. doi: 10.1039/d4ra05052e. eCollection 2024 Oct 23.
In this post-new-normal era, the public prioritizes preventive measures over curing, which is a constructive approach to staying healthy. In this study, an innovative antimicrobial membrane material has been developed, showcasing the promising potential for various applications. The metal-doped silica nanoparticles (Ag, Cu, and Co) were incorporated into a cellulose acetate (CA) polymer-based nanofiber membrane using the electrospinning technique. The metal nanoparticles were doped into a silanol network of silica nanoparticles. The fabricated membranes underwent detailed characterization using a wide range of techniques including PXRD, FTIR, Raman, SEM, TEM, TGA, and tensile testing. These analyses provided compelling evidence confirming the successful incorporation of metal-doped silica nanoparticles (Ag, Cu, and Co) into cellulose-based nanofibers. The band gap energies of the fabricated CA mats lie below 3.00 eV, confirming that they are visible light active. The trimetallic silica nanohybrid exhibited the lowest band gap energy of 2.84 eV, proving the self-sterilizing ability of the CA mats. The DPPH assay further confirmed the best radical scavenging activity by the trimetallic silica nanohybrid incorporated nanofiber mat (91.77 ± 0.88%). The antimicrobial activity was assessed by using the bacterial ATCC strains of , , MRSA (Methicillin-resistant ), , , and and fungal strains; quality control samples of , , and , as well as the ATCC strain of . The trimetallic silica nanohybrid-incorporated CA membranes demonstrated the most significant inhibition zones. The reported findings substantiate the self-sterilizing mat's viability, affordability, efficacy against a broad spectrum of microbial strains, cost-effectiveness, and biodegradability. Furthermore, the mat serves as a dual-purpose physical and biological barrier against microbes, affirming its potential impact.
在这个后疫情时代,公众将预防措施置于治疗之上,这是保持健康的一种建设性方法。在本研究中,开发了一种创新的抗菌膜材料,展示了其在各种应用中的广阔潜力。采用静电纺丝技术将金属掺杂的二氧化硅纳米颗粒(银、铜和钴)掺入醋酸纤维素(CA)聚合物基纳米纤维膜中。金属纳米颗粒被掺杂到二氧化硅纳米颗粒的硅醇网络中。使用包括PXRD、FTIR、拉曼、SEM、TEM、TGA和拉伸测试等多种技术对制备的膜进行了详细表征。这些分析提供了有力证据,证实金属掺杂的二氧化硅纳米颗粒(银、铜和钴)已成功掺入纤维素基纳米纤维中。制备的CA垫的带隙能量低于3.00 eV,证实它们具有可见光活性。三金属二氧化硅纳米杂化物表现出最低的带隙能量2.84 eV,证明了CA垫的自消毒能力。DPPH测定进一步证实了掺入三金属二氧化硅纳米杂化物的纳米纤维垫具有最佳的自由基清除活性(91.77±0.88%)。通过使用细菌ATCC菌株、、耐甲氧西林金黄色葡萄球菌(MRSA)、、和以及真菌菌株来评估抗菌活性;使用、和的质量控制样品以及的ATCC菌株。掺入三金属二氧化硅纳米杂化物的CA膜表现出最显著的抑菌圈。报道的研究结果证实了自消毒垫的可行性、可承受性、对广泛微生物菌株的有效性、成本效益和生物降解性。此外,该垫作为一种针对微生物的物理和生物双重屏障,证实了其潜在影响。