绿色纳米银功能化抗菌聚砜纳米纤维的易湿法微生物腐蚀防护

IF 0.8 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
Nalan Oya San Keskin, Furkan Deniz, H. Nazır
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引用次数: 0

摘要

在纳米纤维涂层中引入抗微生物纳米颗粒对提高涂层的微生物防腐性能具有重要意义。在这里,静电纺聚砜纳米纤维(PSU-Nf)和PSU-Nf功能化的生物纳米银(AgNPs)涂层(PSU-Nf-AgNPs)用于在含有嗜嗜嗜气单胞菌(a .嗜嗜嗜嗜气单胞菌)的海洋环境中抗钴(Co)腐蚀。我们利用PSU-Nf的屏障功能和细菌合成的AgNPs的细菌抑制特性。光学显微镜观察纳米纤维涂层的厚度为233.11±33.64µm,扫描电镜观察纳米纤维的无头形貌。利用极化技术和电化学阻抗谱(EIS)研究了PSU-Nf和PSU-Nf- agnps涂层Co在非生物和细菌环境中的腐蚀行为。腐蚀分析表明,纳米结构的加入增加了电荷传递电阻(Rct),从而降低了腐蚀速率。SEM显微图显示,Co表面受到微生物腐蚀的严重破坏,出现了严重的裂缝。然而,PSU-Nf,特别是PSU-Nf- agnps涂层的Co表面仍然被纳米纤维涂层覆盖,因为细菌菌落没有被发现。此外,执行细菌圆盘扩散法的结果表明,静电纺丝PSU-Nf-AgNPs对革兰氏阳性、革兰氏阴性和模式生物膜细菌具有良好的抗菌活性。结果表明,在无机盐介质中,未涂覆的Co表面存在严重的裂纹,耐蚀性较差。因此,包覆Co的PSU-Nf-AgNPs在含细菌的无机盐介质中具有更好的耐腐蚀性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Antibacterial Polysulfone Nanofiber Functionalized with Green Silver Nanoparticles by a Facile Wetting Method for Microbial Corrosion Protection
The introduction of antimicrobial nanoparticles into nanofiber coatings is significant for enhancing microbial corrosion protection. Here, electrospun polysulfone nanofiber (PSU-Nf) and PSU-Nf functionalized with biogenic silver nanoparticles (AgNPs) coatings (PSU-Nf-AgNPs) used for Cobalt (Co) corrosion resistance in a marine environment containing Aeromonas eucrenophila (A. eucrenophila). We utilized the barrier function of the PSU-Nf and the bacterial inhibition property of the AgNPs that are synthesized using bacteria. The thickness of nanofiber coatings was 233.11 ± 33.64 µm analyzed by optical microscope and beadless morphology of nanofibers was observed using scanning electron microscope (SEM). The corrosion behavior of Co coated with PSU-Nf and PSU-Nf-AgNPs in abiotic and in the presence of the bacterium environment was investigated via polarization techniques and electrochemical impedance spectroscopy (EIS). Corrosion analysis reveals that the charge transfer resistance (Rct) increased because of the addition of the nanostructure resulting in a reduction in corrosion rate. SEM micrographs show Co surface was severely damaged by a microbial corrosive attack with severe crevices. However, the PSU-Nf and especially PSU-Nf-AgNPs coated Co surface was still covered by nanofiber coatings as the bacteria colony was not noticed. In addition, the results of the performing bacterial disk diffusion method indicated that electrospun PSU-Nf-AgNPs have good antibacterial activity against Gram-positive, Gram-negative, and model biofilm bacterium. It was found that the uncoated Co surface had severe crevices and offered poor corrosion resistance under mineral salt medium with A. eucrenophila strain. Therefore, PSU-Nf-AgNPs coated Co exhibited better corrosion resistance in mineral salt medium containing bacteria.
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来源期刊
Journal of Nano Research
Journal of Nano Research 工程技术-材料科学:综合
CiteScore
2.40
自引率
5.90%
发文量
55
审稿时长
4 months
期刊介绍: "Journal of Nano Research" (JNanoR) is a multidisciplinary journal, which publishes high quality scientific and engineering papers on all aspects of research in the area of nanoscience and nanotechnologies and wide practical application of achieved results. "Journal of Nano Research" is one of the largest periodicals in the field of nanoscience and nanotechnologies. All papers are peer-reviewed and edited. Authors retain the right to publish an extended and significantly updated version in another periodical.
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