eprintid: 8089 rev_number: 2 eprint_status: archive userid: 1 dir: disk0/00/00/80/89 datestamp: 2023-11-09 16:19:56 lastmod: 2023-11-09 16:19:56 status_changed: 2023-11-09 16:11:46 type: article metadata_visibility: show creators_name: Samsudin, M.F.R. creators_name: Sufian, S. creators_name: Bashiri, R. creators_name: Mohamed, N.M. creators_name: Ramli, R.M. title: Synergistic effects of pH and calcination temperature on enhancing photodegradation performance of m-BiVO4 ispublished: pub keywords: Aromatic compounds; Calcination; Crystallinity; Degradation; Energy gap; Fourier transform infrared spectroscopy; Light; pH; Photocatalysts; Photodegradation; Tungstate minerals, Bismuth vanadates; Calcination temperature; Mathematical representations; Methylene Blue; Photo catalytic degradation; Photodegradation of methylene blue; Response surface methodology; Visible-light irradiation, pH effects note: cited By 32 abstract: Photocatalytic degradation of organic dyes is a promising alternative to current conventional pollution-free technologies. Herein, the visible-light-driven m-BiVO4 photocatalysts with enhanced photodegradation performance were successfully synthesized via solid�liquid state reaction. The photodegradation performance of as-prepared m-BiVO4 photocatalysts via removal of methylene blue dye under visible light irradiation were evaluated by adjusting pH (1, 3, 6, and 10) and calcination temperature (400, 500, and 600 °C). In addition, a mathematical representation for understanding the interaction between pH and calcination temperature for photodegradation of methylene blue using response surface methodology (RSM) was successfully generated. The m-BiVO4 photocatalysts prepared at pH 1 and then calcined at 500 °C exhibited superior photodegradation performance with 98.5 rate of removal within 3 h. The XRD peaks confirmed that the as-prepared m-BiVO4 were in agreement with standard monoclinic scheelite structure. Moreover, the intensification of FTIR spectra of mBV500 revealed that coupling calcination treatment with pH helps to generate more active site traits, resulting in better photodegradation performance. The better crystallinity of mBV500 shown in FESEM micrographs and sharp deconvolution of XPS peaks signified the decent synergy between optimum pH and calcination temperature. The synergistic effect between optimum pH and calcination temperature also effectively averted the fast recombination rate of electron-hole pairs by minimizing the band gap energy as revealed in DR�UV�Vis measurements. © 2017 Taiwan Institute of Chemical Engineers date: 2017 publisher: Taiwan Institute of Chemical Engineers official_url: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85033232199&doi=10.1016%2fj.jtice.2017.09.045&partnerID=40&md5=c9548d9410a38497892016470b80d609 id_number: 10.1016/j.jtice.2017.09.045 full_text_status: none publication: Journal of the Taiwan Institute of Chemical Engineers volume: 81 pagerange: 305-315 refereed: TRUE issn: 18761070 citation: Samsudin, M.F.R. and Sufian, S. and Bashiri, R. and Mohamed, N.M. and Ramli, R.M. (2017) Synergistic effects of pH and calcination temperature on enhancing photodegradation performance of m-BiVO4. Journal of the Taiwan Institute of Chemical Engineers, 81. pp. 305-315. ISSN 18761070