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References
Оглавление1. Kumar, B., Kumar, S., Kumar, S., Butanol reforming: An overview on recent developments and future aspects. Rev. Chem. Eng., 34, 1–19, 2017.
2. Kothari, D.P., Singal, K.C., Ranjan, R., Renewable energy sources and emerging technologies, Second edition, PHI Learning Private Limited, Delhi, India, 2016.
3. Tursi, A., A review on biomass: importance, chemistry, classification, and conversion. Biofuel Res. J., 22, 962–979, 2019.
4. Vassilev, S.V., Baxter, D., Andersen, L.K., Vassileva, C.G., An overview of the chemical composition of biomass. Fuel, 89, 5, 913–933, 2010.
5. Granone, L.I., Sieland, F., Zheng, N., Dillert, R., Bahnemann, D.W., Photocatalytic conversion of biomass into valuable products: A meaningful approach? Green Chem., 20, 1169–1192, 2018.
6. Lu, Y., Wei, X.-Y., Wen, Z., Chen, H.-B., Lu, Y.-C., Zong, Z.-M., Cao, J.-P., Qi, S.-C., Wang, S.-Z., Yu, L.-C., Zhao, W., Fan, X., Zhao, Y.-P., Photocatalytic depolymerization of rice husk over TiO2 with H2O2. Fuel Process. Technol., 117, 8–16, 2014.
7. Prado, R., Erdocia, X., Labidi, J., Effect of the photocatalytic activity of TiO2 on lignin depolymerisation. Chemosphere, 91, 1355–1361, 2013.
8. Heidenreich, S. and Foscolo, P.U., New concepts in biomass gasification. Prog. Energy Combust. Sci., 46, 72–95, 2015.
9. Huang, H.-J. and Yuan, X.-Z., Recent progress in the direct liquefaction of typical biomass. Prog. Energy Combust. Sci., 49, 59–80, 2015.
10. Dimitriadis, A. and Bezergianni, S., Hydrothermal liquefaction of various biomass and waste feedstocks for biocrude production: A state of the art review. Renew. Sustain. Energy Rev., 68, 113–125, 2017.
11. Sawatdeenarunat, C., Surendra, K.C., Takara, D., Oechsner, H., Khanal, S.K., Anaerobic digestion of lignocellulosic biomass: Challenges and opportunities. Bioresour. Technol., 178, 178–186, 2015.
12. Maoa, C., Feng, Y., Wang, X., Ren, G., Review on research achievements of biogas from anaerobic digestion. Renew. Sustain. Energy Rev., 45, 540–555, 2015.
13. Kathirvelu, S., D’Souza, L., Dhurai, B., Nanotechnology applications in textiles. Ind. J. Sci. Tech., 1, 1-10, 2008.
14. Bellardita, M., Loddo, V., Palmisano, L., Formation of High Added Value Chemicals by Photocatalytic Treatment of Biomass. Mini-Rev. Org. Chem., 17, 884–901, 2020.
15. Xiang, Z., Han, W., Deng, J., Zhu, W., Zhang, Y., Wang, H., Photocatalytic conversion of lignin to chemicals and fuels. ChemSusChem, 13, 17, 1–14, 2020.
16. Colmenares, J.C., Luque, R., Campelo, J.M., Colmenares, F., Karpiński, Z., Romero, A.A., Nanostructured Photocatalysts and Their Applications in the Photocatalytic Transformation of Lignocellulosic Biomass: An Overview. Mater., 2009, 2, 2228–2258, 2009.
17. Zhang, L., Ran, J., Qiao, S.-Z., Jaroniec, M., Characterization of semiconductor photocatalysts. Chem. Soc. Rev., 48, 5184–5206, 2019.
18. Alfano, O.M., Bahnemann, D., Cassano, A.E., Dillert, R., Goslich, R., Photocatalysis in water environments using artificial and solar light. Catal. Today, 58, 2–3, 199–230, 2000.
1 *Corresponding author: brajesh10iitr@gmail.com