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可扩展的混合抗菌表面:含黑硅的二氧化钛纳米颗粒

Scalable Hybrid Antibacterial Surfaces: TiO Nanoparticles with Black Silicon.

作者信息

Singh Jagriti, Hegde Prajwal B, Avasthi Sushobhan, Sen Prosenjit

机构信息

Centre for Nanoscience and Engineering, Indian Institute of Science, Bengaluru 560012, India.

出版信息

ACS Omega. 2022 Feb 25;7(9):7816-7824. doi: 10.1021/acsomega.1c06706. eCollection 2022 Mar 8.

Abstract

With the increase of drug resistance, there is a need for surface coatings that inhibit microbes without antibiotics. Nanostructured photocatalysts, like TiO-coated nanotubes, are promising alternatives to antibiotics. Nanostructures rupture the cell wall by impaling the bacteria. Photocatalysts generate reactive oxygen species (ROS) in the presence of light, which oxidize organic matter. The combined effect of photocatalysts and nanostructures is better than the addition of individual components, as nanostructures also enhance the ROS production by trapping light. The synergetic effect is remarkably effective in reducing the growth of bacterial colonies, but scalability still remains a challenge. Conventional techniques like atomic layer deposition (ALD) are excellent for proof of concept but are not scalable to hundreds of square meters, as needed for practical applications. This report demonstrates two scalable and cost-effective techniques for synthesizing photocatalytic nanostructures: spray- and spin-coating TiO nanoparticles. Unlike ALD, spray- and spin-coated TiO nanoparticles do not reduce the roughness of a structured surface, which improves antibacterial performance by 23%. Integration of nanostructures with spray-coated TiO is potentially a low-cost and scalable technology for large-area antibacterial surfaces.

摘要

随着耐药性的增加,需要无需抗生素就能抑制微生物的表面涂层。纳米结构光催化剂,如二氧化钛涂层纳米管,是抗生素的有前途的替代品。纳米结构通过刺穿细菌来破坏细胞壁。光催化剂在光照下产生活性氧(ROS),ROS可氧化有机物。光催化剂和纳米结构的联合作用优于单独添加各组分的效果,因为纳米结构还可通过捕获光来增强ROS的产生。这种协同效应在减少细菌菌落生长方面非常有效,但可扩展性仍然是一个挑战。像原子层沉积(ALD)这样的传统技术对于概念验证非常出色,但无法扩展到实际应用所需的数百平方米。本报告展示了两种可扩展且经济高效的合成光催化纳米结构的技术:喷涂和旋涂二氧化钛纳米颗粒。与ALD不同,喷涂和旋涂的二氧化钛纳米颗粒不会降低结构化表面的粗糙度,这可将抗菌性能提高23%。将纳米结构与喷涂的二氧化钛相结合可能是一种用于大面积抗菌表面的低成本且可扩展的技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92c8/8908539/f9c17fbacc24/ao1c06706_0003.jpg

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