Cargando…

Modulating Direct Growth of Copper Cobaltite Nanostructure on Copper Mesh as a Hierarchical Catalyst of Oxone Activation for Efficient Elimination of Azo Toxicant

As cobalt (Co) has been the most useful element for activating Oxone to generate SO(4)(•−), this study aims to develop a hierarchical catalyst with nanoscale functionality and macroscale convenience by decorating nanoscale Co-based oxides on macroscale supports. Specifically, a facile protocol is pr...

Descripción completa

Detalles Bibliográficos
Autores principales: Mao, Po-Hsin, Kwon, Eilhann, Chang, Hou-Chien, Bui, Ha Manh, Phattarapattamawong, Songkeart, Tsai, Yu-Chih, Lin, Kun-Yi Andrew, Ebrahimi, Afshin, Yee, Yeoh Fei, Yuan, Min-Hao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9853330/
https://www.ncbi.nlm.nih.gov/pubmed/36558250
http://dx.doi.org/10.3390/nano12244396
Descripción
Sumario:As cobalt (Co) has been the most useful element for activating Oxone to generate SO(4)(•−), this study aims to develop a hierarchical catalyst with nanoscale functionality and macroscale convenience by decorating nanoscale Co-based oxides on macroscale supports. Specifically, a facile protocol is proposed by utilizing Cu mesh itself as a Cu source for fabricating CuCo(2)O(4) on Cu mesh. By changing the dosages of the Co precursor and carbamide, various nanostructures of CuCo(2)O(4) grown on a Cu mesh can be afforded, including nanoscale needles, flowers, and sheets. Even though the Cu mesh itself can be also transformed to a Cu-Oxide mesh, the growth of CuCo(2)O(4) on the Cu mesh significantly improves its physical, chemical, and electrochemical properties, making these CuCo(2)O(4)@Cu meshes much more superior catalysts for activating Oxone to degrade the Azo toxicant, Acid Red 27. More interestingly, the flower-like CuCo(2)O(4)@Cu mesh exhibits a higher specific surface area and more superior electrochemical performance, enabling the flower-like CuCo(2)O(4)@Cu mesh to show the highest catalytic activity for Oxone activation to degrade Acid Red 27. The flower-like CuCo(2)O(4)@Cu mesh also exhibits a much lower E(a) of Acid Red 27 degradation than the reported catalysts. These results demonstrate that CuCo(2)O(4)@Cu meshes are advantageous heterogeneous catalysts for Oxone activation, and especially, the flower-like CuCo(2)O(4)@Cu mesh appears as the most effective CuCo(2)O(4)@Cu mesh to eliminate the toxic Acid Red 27.