Study on the capacity of dye degradation and bacteria inhibiting property of (6Co/4Zn)ZIF composite
DOI:
https://doi.org/10.51316/jca.2022.028Keywords:
ZIFs, photocatalysis, antibacterial activity, RhodamineAbstract
In this work, the zinc/cobalt-based zeolite imidazolate framework-67 was synthesized using solvothermal method. Their application in the RhB dye degradation and inhibition of bacteria growth were investigated. The obtained materials were characterized utilizing scanning electron microscope (SEM), X-ray diffraction (XRD), and nitrogen adsorption-desorption isotherms. Our study reported the use of (6Co/4Zn)ZIF composite for the simultaneous treatment of both Rhodamine B dye and bacteria. The result showed that the prepared composite could remove RhB dye up to 95% by both adsorption and photodegradation, and exhibited good antibacterial activity against both Gram-negative E. coli (67,7% inhibition rate) and Gram-positive S. aureus (57,6% inhibition rate) under visible-light condition. Our study indicated that 6Co/4Zn)ZIF composite could be a potential material for the waste-water treatment ain textile industry.
Downloads
References
M. Rafatullah, O. Sulaiman, R. Hashim, and A. Ahmad, Journal of hazardous materials 177 (2010) 70-80. https://doi.org/10.1016/j.jhazmat.2009.12.047
K.T. Chung, Journal of Environmental Science & Health Part C 18 (2000) 51-74. https://doi.org/10.1080/10590500009373515
K. Golka, S. Kopps, and Z.W. Myslak, Toxicology letters 151 (2004) 203-210. https://doi.org/10.1016/j.toxlet.2003.11.016
S. Ghoreishi and R. Haghighi, Chemical engineering journal 95 (2003) 163-169. http://dx.doi.org/10.1016/S1385-8947(03)00100-1
S. Chatterjee, D.S. Lee, M.W. Lee, and S.H. Woo, Bioresource Technology 100 (2009) 3862-3868. https://doi.org/10.1016/j.biortech.2009.03.023
E. Lorenc-Grabowska and G. Gryglewicz, Dyes and pigments 74 (2007) 34-40. https://doi.org/10.1016/j.dyepig.2006.01.027
I.D. Mall, V.C. Srivastava, N.K. Agarwal, and I.M. Mishra, Chemosphere 61 (2005) 492-501. https://doi.org/10.1016/j.chemosphere.2005.03.065
C.-H. Liu, J.-S. Wu, H.-C. Chiu, S.-Y. Suen, and K.H. Chu, Water research 41 (2007) 1491-1500. http://dx.doi.org/10.1016/j.watres.2007.01.023
J.-S. Wu, C.-H. Liu, K.H. Chu, and S.-Y. Suen, Journal of membrane science 309 (2008) 239-245. https://doi.org/10.1016/j.memsci.2007.10.035
U.G. Akpan and B.H. Hameed, Journal of hazardous materials 170 (2009) 520-529.
K. Rajeshwar, M. Osugi, W. Chanmanee, C. Chenthamarakshan, M.V.B. Zanoni, P. Kajitvichyanukul, and R. Krishnan-Ayer, Journal of photochemistry and photobiology C: photochemistry reviews 9 (2008) 171-192.
J.L. Wang and L.J. Xu, Critical reviews in environmental science and technology 41 (2012) 251-325.
H. Zhang, J. Zhong, G. Zhou, J. Wu, Z. Yang, and X. Shi, Journal of Nanomaterials, 2016.
K. Zhou, B. Mousavi, Z. Luo, S. Phatanasri, S. Chaemchuen, and F. Verpoort, Journal of Materials Chemistry A 5 (2017) 952-957.
K.T. Butler, C.H. Hendon, and A. Walsh, Faraday discussions 201 (2017) 207-219.
M.T. Thanh, T.V. Thien, P.D. Du, N.P. Hung, and D.Q. Khieu, Journal of Porous Materials 25 (2018) 857-869.
H. Yang, X.-W. He, F. Wang, Y. Kang, and J. Zhang, Journal of Materials Chemistry 22 (2012) 21849-21851.
N.T.T. Tu, P.C. Sy, T.T. Minh, H.T.M. Thanh, T.V. Thien, H.T. Long, and D.Q. Khieu, Journal of Inclusion Phenomena and Macrocyclic Chemistry 95 (2019) 99-110.
N.T.T. Tu, T.V. Thien, P.D. Du, V.T.T. Chau, T.X. Mau, and D.Q. Khieu, Journal of Environmental Chemical Engineering 6 (2018) 2269-2280.
Z.-X. Low, J. Yao, Q. Liu, M. He, Z. Wang, A.K. Suresh, J. Bellare, and H. Wang, Crystal growth & design 14 (2014) 6589-6598.
Y. Li, K. Zhou, M. He, and J. Yao, Microporous and Mesoporous Materials 234 (2016) 287-292.
D. Luo, C. Wang, Y. Tong, C. Liu, Y. Xiao, Z. Zhu, D. Liu, and Y. Wang, RSC Advances 10 (2020) 7360-7367.
Y.-F. Guo, W.-J. Fang, J.-R. Fu, Y. Wu, J. Zheng, G.-Q. Gao, C. Chen, R.-W. Yan, S.-G. Huang, and C.-C. Wang, Applied Surface Science 435 (2018) 149-155.
B. Soltani, H. Nabipour, and N.A. Nasab, Journal of Inorganic and Organometallic Polymers and Materials 28 (2018) 1090-1097.
V. Ravinayagam and S. Rehman, Saudi journal of biological sciences 27 (2020) 1726-1736.
C. Bankier, R. Matharu, Y. Cheong, G. Ren, E. Cloutman-Green, and L. Ciric, Scientific reports 9 (2019), 1-8.
H.B. Gasmalla, X. Lu, M.I. Shinger, L. Ni, A.N. Chishti, and G. Diao, Journal of nanobiotechnology 17 (2019) 1-14.
W. Zhu, J. Liu, S. Yu, Y. Zhou, and X. Yan, Journal of hazardous materials 318 (2016) 407-416.
B. Ahmed, A.K. Ojha, A. Singh, F. Hirsch, I. Fischer, D. Patrice, and A. Materny, Journal of hazardous materials 347 (2018) 266-278.
M.M. Khan, S. Kumar, T. Ahamad, and A.N. Alhazaa, Journal of Alloys and Compound 743 (2018) 485-493.
L. Wang, C. Hu, and L. Shao, International journal of nanomedicine 12 (2017) 1227.