MXenes Antibacterial Properties and Applications: A Review and Perspective

Author:

Seidi Farzad1,Arabi Shamsabadi Ahmad2ORCID,Dadashi Firouzjaei Mostafa34ORCID,Elliott Mark4,Saeb Mohammad Reza5,Huang Yang1,Li Chengcheng1,Xiao Huining6,Anasori Babak37ORCID

Affiliation:

1. Jiangsu Co‐Innovation Center of Efficient Processing and Utilization of Forest Resources and International Innovation Center for Forest Chemicals and Materials Nanjing Forestry University Nanjing 210037 P. R. China

2. Department of Chemistry University of Pennsylvania Philadelphia PA 19104 USA

3. Department of Mechanical and Energy Engineering and Integrated Nanosystems Development Institute Purdue School of Engineering and Technology Indiana University–Purdue University Indianapolis Indianapolis IN 46202 USA

4. Department of Civil Construction, and Environmental Engineering University of Alabama Tuscaloosa AL 35487 USA

5. Department of Polymer Technology Faculty of Chemistry Gdańsk University of Technology G. Narutowicza Gdańsk 11/12 80–233 Poland

6. Department of Chemical Engineering University of New Brunswick Fredericton New Brunswick E3B 5A3 Canada

7. School of Materials Engineering Purdue University West Lafayette IN 47907 USA

Abstract

AbstractThe mutations of bacteria due to the excessive use of antibiotics, and generation of antibiotic‐resistant bacteria have made the development of new antibacterial compounds a necessity. MXenes have emerged as biocompatible transition metal carbide structures with extensive biomedical applications. This is related to the MXenes’ unique combination of properties, including multifarious elemental compositions, 2D‐layered structure, large surface area, abundant surface terminations, and excellent photothermal and photoelectronic properties. The focus of this review is the antibacterial application of MXenes, which has attracted the attention of researchers since 2016. A quick overview of the synthesis strategies of MXenes is provided and then summarizes the effect of various factors (including structural properties, optical properties, surface charges, flake size, and dispersibility) on the biocidal activity of MXenes. The main mechanisms for deactivating bacteria by MXenes are discussed in detail including rupturing of the bacterial membrane by sharp edges of MXenes nanoflakes, generating the reactive oxygen species (ROS), and photothermal deactivating of bacteria. Hybridization of MXenes with other organic and inorganic materials can result in materials with improved biocidal activities for different applications such as wound dressings and water purification. Finally, the challenges and perspectives of MXene nanomaterials as biocidal agents are presented.

Funder

National Natural Science Foundation of China

National Science Foundation

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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