The construction of biomimetic materials and their research progress in the field of aquatic environmental chemistry

被引:0
|
作者
Zha T. [1 ]
Yang H. [2 ]
Qin H. [2 ]
Guan X. [1 ,2 ]
机构
[1] State Key Laboratory of Pollution Control and Resources Reuse, College of Environmental Science and Engineering, Tongji University, Shanghai
[2] School of Ecological and Environmental Sciences, East China Normal University, Shanghai
来源
Huagong Xuebao/CIESC Journal | 2023年 / 74卷 / 02期
关键词
aquatic environment; biomimetic material; catalyst; detection method; oxidation; reduction;
D O I
10.11949/0438-1157.20221204
中图分类号
学科分类号
摘要
Inspired by the biomorphic structures or chemical properties of biological molecules, many biomimetic materials are designed and attract considerable attention in the field of aquatic environmental chemistry. In this review, the research progress of biomimetic materials in that field is systematically summarized. Biomimetic materials can be designed by molecular bionics or biomorphic design. Molecular bionic approaches include reconstruction or immobilization of the natural material, mimicking the active sites of biological molecules, and mimicking the catalytic environments of natural materials. These biomimetic materials have been applied in the studies of oxidative or reductive removal of contaminants from water and their detection. Its unique structure, mechanism of action and excellent performance make it have strong potential for practical application. The correlation between its microstructure and performance and the controllable synthesis method of the optimized structure are the key issues to be paid attention to in the follow-up research. Finally, the challenges and future development directions of biomimetic materials research in the field of water environment chemistry are discussed. © 2023 Chemical Industry Press. All rights reserved.
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页码:585 / 598
页数:13
相关论文
共 97 条
  • [81] Ren C X, Yang P, Sun J N, Et al., A bioinspired molybdenum catalyst for aqueous perchlorate reduction, Journal of the American Chemical Society, 143, 21, pp. 7891-7896, (2021)
  • [82] Hu B., Synthesis and catalytic performance of supermoleculebased covalent organic polymers/metal nanoparticle composites, (2021)
  • [83] Wu Z S, He X F, Xue Y T, Et al., Cyclodextrins grafted MoS<sub>2</sub>/gC<sub>3</sub>N<sub>4</sub> as high-performance photocatalysts for the removal of glyphosate and Cr(Ⅵ) from simulated agricultural runoff, Chemical Engineering Journal, 399, (2020)
  • [84] Min Y, Zhou X, Chen J J, Et al., Integrating single-cobalt-site and electric field of boron nitride in dechlorination electrocatalysts by bioinspired design, Nature Communications, 12, 1, (2021)
  • [85] Deng J, Hu X M, Gao E L, Et al., Electrochemical reductive remediation of trichloroethylene contaminated groundwater using biomimetic iron-nitrogen-doped carbon, Journal of Hazardous Materials, 419, (2021)
  • [86] Li J C, Li M, An N, Et al., Atomically dispersed Fe atoms anchored on S and N-codoped carbon for efficient electrochemical denitrification, Proceedings of the National Academy of Sciences, 118, 33, (2021)
  • [87] Wu Z Y, Karamad M, Yong X, Et al., Electrochemical ammonia synthesis via nitrate reduction on Fe single atom catalyst, Nature Communications, 12, 1, (2021)
  • [88] Du X D, Yi X H, Wang P, Et al., Enhanced photocatalytic Cr(Ⅵ) reduction and diclofenac sodium degradation under simulated sunlight irradiation over MIL-100(Fe)/g-C<sub>3</sub>N<sub>4</sub>heterojunctions, Chinese Journal of Catalysis, 40, 1, pp. 70-79, (2019)
  • [89] Zhang P, Sun D R, Cho A, Et al., Modified carbon nitride nanozyme as bifunctional glucose oxidase-peroxidase for metal-free bioinspired cascade photocatalysis, Nature Communications, 10, 1, (2019)
  • [90] Wu Y, Jiao L, Luo X, Et al., Oxidase-like Fe-N-C single-atom nanozymes for the detection of acetylcholinesterase activity, Small, 15, 43, (2019)