Photocatalytic performance of yttrium-doped CNT-ZnO nanoflowers synthesized from hydrothermal method

被引:0
|
作者
Sharma, S.K. [1 ]
Gupta, R. [1 ]
Sharma, G. [1 ]
Vemula, K. [2 ]
Koirala, A.R. [2 ]
Kaushik, N.K. [3 ]
Choi, E.H. [3 ]
Kim, D.Y. [4 ]
Purohit, L.P. [5 ]
Singh, B.P. [1 ]
机构
[1] Department of Physics, C.C.S. University, Meerut Campus, Meerut,UP,250004, India
[2] Korea Center for Artificial Photosynthesis, Department of Chemistry, Sogang University, Seoul,04107, Korea, Republic of
[3] Plasma Bioscience Research Center, Department of Electrical and Biological Physics, Kwangwoon University, Seoul,01897, Korea, Republic of
[4] Division of Physics and Semiconductor Science, Dongguk University-Seoul, Seoul,04620, Korea, Republic of
[5] Department of Physics, Gurukul Kangri University, Haridwar,Uttarakhand,249404, India
来源
Materials Today Chemistry | 2021年 / 20卷
关键词
Photocatalytic activity - Aromatic compounds - Image enhancement - Synthesis (chemical) - Yttrium - II-VI semiconductors - ZnO nanoparticles;
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摘要
We synthesized yttrium-doped CNT-ZnO (CNT-YZO) nanoparticles (NPs) and nanoflowers (NFs) from the hydrothermal method at 130 °C. The effect of Y3+-concentrations in nanostructured CNT-YZO was determined in terms of the photocatalytic degradation of methylene blue (MB). Microstructural analysis showed the hexagonal cubic structure of ZnO regardless of Y-concentration or the addition of CNTs during the nucleation and growth. The specific surface area, total pore volume, and mean pore diameter of typical CNT-YZO NFs were observed to be 36.109 m2/g, 0.162 cm3/g, and 17.932 nm, respectively. The photocatalytic degradation performance of CNT-YZO NFs improved due to increase reactive sites of the catalyst and reduced recombination of photo-induced carriers. The surface-area normalized first-order decomposition rates (r/m2) of CNT-YZO NFs showed the highest photocatalytic degradation (99%). The CNT-YZO has produced a new kind of material for the photocatalytic degradation under the irradiation of visible light using a solar simulator. © 2021 Elsevier Ltd
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