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In this research work, high uniform CuFeS2 chalcopyrite with 20-40 nm particles were synthesized via a simple hydrothermal method. Different analysis were used to characterize the obtained product such as X-ray diffraction pattern (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM) and thermal gravimetric analysis (TGA). The photocatalytic activity of the product was investigated by degradation three different dyes namely acid brown, acid red and methylene blue. The results showed the synthesized CuFeS2 nanoparticles have high photocatalytic activity and can degrade the used dyes in large quantities.
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Strony
595--600
Opis fizyczny
Bibliogr. 20 poz., fot., rys.
Twórcy
autor
- Vali-e-Asr University of Rafsanjan, Faculty of Science, Department of Chemistry, Rafsanjan, PO Box: 77176, Iran
autor
- Vali-e-Asr University of Rafsanjan, Faculty of Science, Department of Chemistry, Rafsanjan, PO Box: 77176, Iran
autor
- Vali-e-Asr University of Rafsanjan, Faculty of Science, Department of Physics, Rafsanjan, PO Box: 77176, Iran
Bibliografia
- [1] E. Dutková, Z. Bujňáková, J. Kováč, I. Škorvánek, M. J. Sayagués, A. Zorkovská, J. Kováč Jr, P. Baláž, Adv. Powder Technol. 29, 1820-1826 (2018).
- [2] S. Thinius, T. Bredow, The Journal of Physical Chemistry C.123, 3216-3225 (2019).
- [3] S. Ghosh, T. Avellini, A. Petrelli, I. Kriegel, R. Gaspari, G. Almeida, G. Bertoni, A. Cavalli, F. Scotognella, T. Pellegrino, Chemistry of Materials 28, 4848-4858 (2016).
- [4] K. M. Deen, E. Asselin, ChemSusChem 11, 1533-1548 (2018).
- [5] H. Takaki, K. Kobayashi, M. Shimono, N. Kobayashi, K. Hirose, N. Tsujii, T. Mori, Materials Today Physics 3, 85-92 (2017).
- [6] Y. Wu, B. Zhou, C. Yang, S. Liao, W.-H. Zhang, C. Li, Chem. Commun. 52, 11488-11491 (2016).
- [7] Y. Li, Y. Wang, B. Pattengale, J. Yin, L. An, F. Cheng, Y. Li, J. Huang, P. Xi, Nanoscale 9, 9230-9237 (2017).
- [8] B. Bhattacharyya, A. Pandey, J. Am. Chem. Soc. 138, 10207-10213 (2016).
- [9] X. Wu, Y. Zhao, C. Yang, G. He, J. Mater. Sci. - Mater. Electron. 50, 4250-4257 (2015).
- [10] K. Deen, E. Asselin, Electrochim. Acta 212, 979-991 (2016).
- [11] S. Sil, A. Dey, S. Halder, J. Datta, P. P. Ray, Performance, J. Mater. Eng. Perform. 27, 2649-2654 (2018).
- [12] W. Ding, X. Wang, H. Peng, L. Hu, Materials Chemistry Physics 137, 872-876 (2013).
- [13] Y.-H. A. Wang, N. Bao, A. Gupta, Solid State Sciences 12, 387-390 (2010).
- [14] J. Hu, Q. Lu, B. Deng, K. Tang, Y. Qian, Y. Li, G. Zhou, X. Liu, Inorg. Chem. Commun. 2, 569-571 (1999).
- [15] E. J. Silvester, T. W. Healy, F. Grieser, B. A. Sexton, Langmuir. 7, 19-22 (1991).
- [16] B. Bhattacharyya, T. Pandit, G. P. Rajasekar, A. Pandey, The Journal of Physical Chemistry Letters. 9, 4451-4456 (2018).
- [17] J. Wojnarowicz, A. Opalinska, T. Chudoba, S. Gierlotka, R. Mukhovskyi, E. Pietrzykowska, K. Sobczak, W. Lojkowski, Journal of Nanomaterials 2016, (Article ID=2789871) 1-15 (2016).
- [18] I. S. Lyubutin, C.-R. Lin, S. S. Starchikov, Y.-J. Siao, M. O. Shaikh, K. O. Funtov, S.-C. Wang, Acta Mater. 61, 3956-3962 (2013).
- [19] M. Wang, L. Wang, G. Yue, X. Wang, P. Yan, D. Peng, Materials Chemistry Physics 115, 147-150 (2009).
- [20] S. D. Disale, S. S. Garje, Appl. Organomet. Chem. 23, 492-497 (2009).
Uwagi
PL
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-24bfd0a4-68c0-4659-beb0-0e19dcc40e28