TY - BOOK AU - Khatun,Fatema TI - Photocatalytic conversion of carbon dioxide to methane using RGO/Au-TNTs SN - THE0008569(Local) PY - 2020/// CY - Kuantan, Pahang PB - UMP KW - Faculty of Civil Engineering Technology KW - Dissertations KW - Universities and colleges KW - Theses N1 - Faculty of Civil Engineering Technology; Thesis (Master of Science) -- Universiti Malaysia Pahang – 2020; Includes bibliographical references N2 - The diversity of nanostructured material synthesis and exploring the proficient physical, chemical, and optical properties in order to investigate its catalytic efficiency is one of the most researched areas nowadays. This present study emphasizes on the reduction of immense CO2 gas in the atmosphere to valuable hydrocarbon fuel with the utilization of synthesized novel nanostructured photocatalyst. Titanium dioxide (TiO2) is one of the most widespread semiconductor photocatalysts for photocatalytic applications. Despite its eminence, it has major drawbacks in terms of higher bandgap (3.2 eV) and high recombination of photogenerated charge carriers. Due to its wide bandgap, the photoexcitation occurred only in the ultraviolet (UV) region of the electromagnetic spectrum. Moreover, the UV region is only 5% in the solar spectrum whereas the visible region comprises a total of 53%. Thus, the higher charge carrier recombination, with less visible light utilization during photoexcitation of TiO2 is one of the major challenges in photocatalytic domains. For this reason, in this study, a TiO2 based nanocomposite photocatalyst with enhanced visible light efficiency was developed through the combined electrochemical anodization, electrochemical deposition, and immersed method. The visible light absorption efficiency of the photocatalysts was revealed through UV-Vis analysis due to the LSPR nature of Au nanoparticles. In addition, the bandgap energy of the photocatalyst was reduced drastically which further shows a lower e-/h+ recombination rate attained through PL analysis. The photocatalytic performance of the prepared photocatalysts for the conversion of CO2 to CH4 yield follows an ascending order of TNTs