Nano-microcapsules loaded with nano-antibacterial agents for long-term inhibition of drug-resistant strains

Author:

He Ke1,Pengjiazi Fu2,Wu Yanqi3,He Yanting4,Hu Qing5,Wu Jia6,Cui Guangxun7,Zhang Jun5,Jin Jun8

Affiliation:

1. School of Civil Engineering and Architecture, Xiamen University of Technology, Xiamen 631000, Fujian, PR China

2. Architectural Design and Research Institute of Shenzhen University, No. 3688 Nanhai Avenue, Nanshan District, Shenzhen 518000, Guangdong, PR China

3. State Key Laboratory of Quality Research in Chinese Medicine, Macau University of Science and Technology, Macau 999078, PR China

4. School of Civil Engineering, Northern University for Nationalities, Yinchuan 750021, Ningxia, PR China

5. Shenzhen University Architectural Design and Research Institute Co., Ltd. Shanghai Branch, Shanghai 200000, PR China

6. Shenzhen University Architectural Design and Research Institute Co., Ltd., Shenzhen 518601, Guangdong, PR China

7. School of Architecture and Urban Planning, Shenzhen University, Shenzhen 518601, Guangdong, PR China

8. Institute of Architecture, Southeast University, Nanjing 210096, Jiangsu, PR China

Abstract

There are growing concerns and worries about the safety of public facilities and equipment. Therefore, coating products with antibacterial properties have become the key to solve this problem, and there is an urgent need to develop new antibacterial architectural coatings. In this study, polystyrene nano-microspheres (PS NMS) were prepared from styrene as raw material. PS nano-microcapsules (PS NMC) were prepared by solute co-diffusion method (SCM) using PS NMS as a template, which were modified to obtain PS-OH NMC. CuS nanoparticles (CuS NPs) with antibacterial activity were further loaded to prepare CuS@PS-OH NMC with long-term antibacterial activity. The SEM results showed that the particle size of CuS@PS-OH NMC was about 410 nm, which was larger than that of PS-OH NMC. The characterization of UV and IR spectra confirmed that CuS NPs were not only encapsulated into PS NMC in large quantities, but also adhered to its surface in a small amount. CuS@PS-OH NMC has good water solubility and can slowly release Cu2+, showing good long-term antibacterial properties against Methicillin-resistant Staphylococcus aureus (MRSA). The CuS@PS-OH NMC developed in this study has excellent performance, good antibacterial effect, environmental friendliness, low price, etc. More importantly, it can efficiently and long-term inhibit MRSA, and can be used as a potential antibacterial architectural coating for special scenarios such as hospitals, schools and densely populated places, which has excellent social and economic value.

Publisher

American Scientific Publishers

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