Synthesis of TiO2/Carbon Nanoparticle (C-dot) Composites as Active Catalysts for Photodegradation of Persistent Organic Pollutant
Dedri Syafei(1), Sri Sugiarti(2*), Noviyan Darmawan(3), Mohammad Khotib(4)
(1) Department of Chemistry, Bogor Agricultural University, Chemistry Building, Wing 1, 3rd Floor, Jl. Tanjung, IPB Darmaga Campus, Bogor 16680
(2) Department of Chemistry, Bogor Agricultural University, Chemistry Building, Wing 1, 3rd Floor, Jl. Tanjung, IPB Darmaga Campus, Bogor 16680
(3) Department of Chemistry, Bogor Agricultural University, Chemistry Building, Wing 1, 3rd Floor, Jl. Tanjung, IPB Darmaga Campus, Bogor 16680
(4) Department of Chemistry, Bogor Agricultural University, Chemistry Building, Wing 1, 3rd Floor, Jl. Tanjung, IPB Darmaga Campus, Bogor 16680
(*) Corresponding Author
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[1] Yu, S., and Semprini, L., 2009, Enhanced reductive dechlorination of PCE DNAPL with TBOS as a slow-release electron donor, J. Hazard. Mater., 167 (1-3), 97–104.
[2] Bukowski, J.A., 2011, Review of the epidemiologic literature on residential exposure to Perchloroethylene, Crit. Rev. Toxicol., 41 (9), 771–782.
[3] González-García, J., Saez, V., Esclapez, M.D., Bonete, P., Walton, D.J., Rehorek, A., and Louisnard, O., 2010, Sonochemical degradation of Perchloroethylene, Physics Procedia, 3 (1), 981–986.
[4] Monteiro, R.A.R., Silva, A.M.T., Angelo, J.R.M., Silva, G.V., Mendes, A.M., Boaventura, R.A.R., and Vilar, V.J.P., 2015, Photocatalytic Oxidation of Gaseous Perchloroethylene over TiO2 Based Paint, J. Photochem. Photobiol., A, 311, 41–52.
[5] Pera-Titus, M., Garcı́a-Molina, V., Baños, M.A., Giménez, J., and Esplugas, S., 2004, Degradation of chlorophenols by means of advanced oxidation processes: a general review, Appl. Catal., B, 47 (4), 219–256.
[6] Mills, A., and Le Hunte, S., 1997, An overview of semiconductor photocatalysis, J. Photochem. Photobiol., A, 108, 1–35.
[7] Hagfeldt, A., and Graetzel, M., 1995, Light-induced redox reactions in nanocrystalline systems, Chem. Rev., 95 (1), 49–68.
[8] Li, H., He, X., Kang, Z., Huang, H., Liu, Y., Liu, J., Lian, S., Tsang, C.H.A., Yang, X., and Lee, S.T., 2010, Water-soluble fluorescent carbon quantum dots and photocatalyst design, Angew. Chem. Int. Ed., 49 (26), 4430–4434.
[9] Yang, Z., Li, Z., Xu, M., Ma, Y., Zhang, J., Su, Y., Gao, F., Wei, H., and Zhang, L., 2013, Controllable synthesis of fluorescent carbon dots and their detection application as nanoprobes, Nano-Micro Lett., 5 (4), 247–259.
[10] Sugiarti, S., and Darmawan, N., 2015, Synthesis of fluorescence carbon nanoparticles from ascorbic acid, Indones. J. Chem., 15 (2), 141–145.
[11] Zhang, H., Ming, H., Lian, S., Huang, H., Li, H., Zhang, L., Liu, Y., Kang, Z., and Shuit-Tong, L., 2011, Fe2O3/carbon quantum dots complex photocatalysts and their enhanced photocatalytic activity under visible light, Dalton Trans., 40 (41), 10822–10825.
[12] Qu, S., Wang, X., Lu, Q., Liu, X., and Wang, L., 2012, A biocompatible fluorescent ink based on water-soluble luminescent carbon nanodots, Angew. Chem. Int. Ed., 51 (49), 12215–12218.
[13] Sun, Y.P., Zhou, B., Lin, Y., Wang, W., Fernando, K.A.S., Pathak, P., Meziani, M.J., Harruff, B.A., Wang, X., Wang, H., Luo, P.G., Yang, H., Kose, M.E., Chen, B., Veca, L.M., and Xie, S.Y., 2006, Quantum-sized carbon dots for bright and colorful photoluminescence, J. Am. Chem. Soc., 128 (24), 7756–7757.
[14] He, D., and Lin, F., 2007, Preparation and photocatalytic activity of anatase TiO2 nanocrystallites with high thermal stability, Mater. Lett., 61 (16), 3385–3387.
[15] Wan, M., Li, W., Long, Y., and Tu, Y., 2012, Electrochemical determination of tryptophan based on Si-doped nano-TiO2 modified glassy carbon electrode, Anal. Methods., 4, 2860–2865.
[16] Ahda, S., and Mardiyanto, 2008, Karakterisasi lapis tipis silicon amorf terhidrogenasi untuk menentukan energi celah pita optik (Eg), Jurnal Sains Material Indonesia, 260–264.
[17] Kurian, S., Seo, H., and Jeon, H., 2013, Significant enhancement in visible light absorption of TiO2 nanotube arrays by surface band gap tuning, J. Phys. Chem. C, 117 (33), 16811–16819.
[18] Ming, H., Ma, Z., Liu, Y., Pan, K., Yu, H., Wang, F., and Kang, Z., 2012, Large scale electrochemical synthesis of high quality carbon nanodots and their photocatalytic property, Dalton Trans., 41 (31), 9526–9531.
DOI: https://doi.org/10.22146/ijc.23615
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