Versatile Magnetic Mesoporous Carbon Derived Nano‐Adsorbent for Synchronized Toxic Metal Removal and Bacterial Disinfection from Water Matrices

Author:

Saleem Atif1ORCID,Chen Jingjie1ORCID,Liu Meng1ORCID,Liu Nian1,Usman Muhammad2ORCID,Wang Ke1,Haris Muhammad3ORCID,Zhang Yuezhou14ORCID,Li Peng1ORCID

Affiliation:

1. Frontiers Science Center for Flexible Electronics (FSCFE) Shaanxi Institute of Flexible Electronics (SIFE) & Shaanxi Institute of Biomedical Materials and Engineering (SIBME) Northwestern Polytechnical University (NPU) 127 West Youyi Road Xi'an 710072 P. R. China

2. École Nationale Supérieure de Chimie de Rennes CNRS UMR 6226 Rennes 35708 France

3. School of Environmental Science and Engineering Shaanxi University of Science & Technology Xi'an 710021 P. R. China

4. Ningbo Institute of Northwestern Polytechnical University Frontiers Science Center for Flexible Electronics (FSCFE) Key Laboratory of Flexible Electronics of Zhejiang Province Ningbo Institute of Northwestern Polytechnical University 218 Qingyi Road Ningbo 315103 China

Abstract

AbstractContamination of water resources by toxic metals and opportunistic pathogens remains a serious challenge. The development of nano‐adsorbents with desired features to tackle this problem is a continuously evolving field. Here, magnetic mesoporous carbon nanospheres grafted by antimicrobial polyhexamethylene biguanidine (PHMB) are reported. Detailed mechanistic investigations reveal that the electrostatic stabilizer modified magnetic nanocore interfaced mesoporous shell can be programmatically regulated to tune the size and related morphological properties. The core–shell nano‐adsorbent shows tailorable shell thickness (≈20–55 nm), high surface area (363.47 m2 g−1), pore volume (0.426 cm3 g−1), radially gradient pores (11.26 nm), and abundant biguanidine functionality. Importantly, the nano‐adsorbent has high adsorption capacity for toxic thallium (Tl(I) ions (≈559 mg g−1), excellent disinfection against Staphylococcus aureus and Escherichia coli (>99.99% at 2 and 2.5 µg mL−1), ultrafast disinfection kinetics rate (>99.99% within ≈4 min), and remarkable regeneration capability when exposed to polluted water matrices. The Tl(I) removal is attributed to surface complexation and physical adsorption owing to open ended mesopores, while disinfection relies on contact of terminal biguanidines with phospholipid head groups of membrane. The significance of this work lies in bringing up effective synchronic water purification technology to combat pathogenic microorganisms and toxic metal.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Ningbo

Northwestern Polytechnical University

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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