Synthesis and Visible-Light Photocatalytic Activity of Graphite-like Carbon Nitride Nanopowders

Pleiades Publishing Ltd - Tập 93 - Trang 494-501 - 2020
M. I. Chebanenko1, N. V. Zakharova2, V. I. Popkov1
1Ioffe Institute, St. Petersburg, Russia
2St. Petersburg State Institute of Technology, St. Petersburg, Russia

Tóm tắt

Graphite-like carbon nitride (g-C3N4) nanopowders were synthesized by heat treatment of urea in air at a temperature of 450–550°С for 30 min and studied by X-ray diffraction and infrared spectroscopy. The main processes resulting in the formation of g-C3N4 from urea under the above conditions was established using the method of simultaneous thermal analysis. It was found that with an increase in the processing temperature of urea from 450 to 550°C, a rise in the specific surface of the powders occurs from 43.3 to 58.6 m2 g–1, as well as an increase in the crystallite sizes of graphite-like carbon nitride in the crystallographic direction (002) from 2.8 to 4.1 nm. According to the results of scanning electron microscopy and low-temperature nitrogen adsorption, the obtained graphite-like carbon nitride powders have a mesoporous structure and are characterized by an average pore size of 6.6–13.8 nm and porosity of 0.07–0.20 cm3 g–1. According to the results of diffuse reflectance spectroscopy, it was found that g-C3N4 nanopowders absorb radiation in the visible region and have a band gap of 2.9 eV. The photocatalytic activity of the obtained graphite-like carbon nitride during the oxidation of an aqueous murexide solution under the influence of visible light was analyzed and it was shown that the obtained g-C3N4 nanopowders have activity close to that of the commercial TiO2 photocatalyst (AEROXIDE P25). In view of the high activity and low cost, the obtained powders of graphite-like carbon nitride can be used as the substrate for new photocatalytic materials.

Tài liệu tham khảo

Spasiano, D., Marotta, R., Malato, S., Fernandez-Ibanez, P., and Di Somma, I., Appl. Catal. B: Environmental, 2015, vol. 170–171, pp. 90–123. https://doi.org/10.1016/j.apcatb.2014.12.050 Vasilevskaia, A.K., Popkov, V.I., Valeeva, A.A., Rempel, A.A., Russ. J. Appl. Chem., 2016, vol. 89, no. 8, pp. 1211–1220. https://doi.org/10.1134/S1070427216080012 Fagan, R., McCormack, D.E., Dionysiou, D.D., and Pillai, S.C., Mater. Sci. Semiconductor Processing, 2016, vol. 42, pp. 2–14. https://doi.org/10.1016/j.mssp.2015.07.052 Ilkaeva, M., Krivtsov, I., Bartashevich, E., Khainakov, S.A., García, J.R., Díaz, E., and Ordónez, S., Green Chem. Lett. and Reviews, 2017, vol. 19, no. 18, pp. 4299–4304. https://doi.org/10.1039/C7GC01588G Kadi, M.W., Mohamed, R.M., Ismail, A.A., and Bahnemann, D.W., Appl. Nanosci., 2018, vol. 8, no. 6, pp. 1587–1596. https://doi.org/10.1007/s13204-018-0835-4 Schaber, P.M., Colson, J., Higgins, S., Thielen, D., Anspach, B., and Brauer, J., Thermochim. Acta, 2004, vol. 424, nos. 1–2, pp. 131–142. https://doi.org/10.1016/j.tca.2004.05.018 Mo, Z., She, X., Li, Y., Liu, L., Huang, L., Chen, Z., Zhang, Q., Xu, H., Li, H., RSC Advances—Royal Soc. Chem., 2015, vol. 5, no. 123, pp. 101552–101562. https://doi.org/10.1039/C5RA19586A Wen, J., Xie, J., Chen, X., Li, X., Appl. Surface Sci., 2017, vol. 391, pp. 72–123. https://doi.org/10.1016/j.apsusc.2016.07.030 Zhang, J.-H., Hou, Y.-J., Wang, S.-J., Zhu, X., Zhu, Ch.-Y., Wang, Zh., Li, Ch.-J., Jiang, J.-J., Wang, H.-P., Pan, M., and Sua, C-Y., J. Mater. Chem. A, 2018, vol. 6, no. 37, pp. 18252–18257. https://doi.org/10.1039/C8TA06726K Ming, L., Yue, H., Xu, L., and Chen, F., J. Mater. Chem. A., 2014, vol. 2, no. 45, pp. 19145–19149. https://doi.org/10.1039/C4TA04041D Khan, A., Alama, U., Razaa, W., Bahnemannbc, D., and Muneer, M., J. Phys. Chem. Solids, 2018, vol. 115, pp. 59–68. https://doi.org/10.1016/j.jpcs.2017.10.032 Kharlamov, A., Bondarenko, M., Kharlamova, G., and Gubareni, N., Diamond and Related Mater., 2016, vol. 66, pp. 16–22. https://doi.org/10.1016/j.diamond.2016.03.012 Chidhambaram, N. and Ravichandran, K., Mater. Lett., 2017, vol. 207, pp. 44–48. https://doi.org/10.1016/j.matlet.2017.07.040 Dong, F., Wang, Zh., Sun, Y., Hob, W.-K., and Zhang, H., J. Colloid Interface Sci., 2013, vol. 401, pp. 70–79. https://doi.org/10.1016/j.jcis.2013.03.034 Dong, F., Liwen Wu, L., Sun, Y., Fu, M., Wu, Zh., and Lee, S.C., J. Mater. Chem., 2011, vol. 21, no. 39, pp. 15171–15174. https://doi.org/10.1039/c1jm12844b Xu, J., Li, Y., Peng, Sh., Lu, G., and Li, Sh., Phys. Chem. Chem. Phys., 2013, vol. 15, no. 20, pp. 7657. https://doi.org/10.1039/c3cp44687e Lotsch, B.V. and Schnick, W., Chem. Mater., 2005, vol. 17, pp. 3976–3982. https://doi.org/10.1021/cm050350q Zhang, Y., Liu, J., Wua, G., and Chen, W., Nanoscale, 2012, vol. 4, pp. 5300–5303. https://doi.org/10.1039/C2NR30948C Ye, S., Wang, R., Wu, M.-Z., and Yuan, Y.-P., Appl. Surface Sci., 2015, vol. 358, pp. 15–27. https://doi.org/10.1016/j.apsusc.2015.08.173 Sosnov, E.A., Malkov, A.A., and Malygin, A.A., Russ. J. Phys. Chem. A, 2009, vol. 83, no. 4, pp. 642–648. https://doi.org/10.1134/s0036024409040219