I Gede Wenten
Department of Chemical Engineering, Faculty of Industrial Technology, Institut Teknologi Bandung, Jalan Ganesa No. 10, Bandung 40132

Published : 1 Documents Claim Missing Document
Claim Missing Document
Check
Articles

Found 1 Documents
Search

Defect-Engineered TiO2 Photocatalysts for Enhanced Methylene Blue Degradation Tri Partono Adhi; Galang Ananta Dwipayana; Dwiwahju Sasongko; I Gede Wenten; Hary Devianto; Wibawa Hendra Saputera
Journal of Engineering and Technological Sciences Vol. 58 No. 5 (2026): Vol. 58 No. 5(2026): October
Publisher : Directorate for Research and Community Services, Institut Teknologi Bandung

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.5614/j.eng.technol.sci.2026.58.5.10

Abstract

Textile wastewater containing synthetic dyes is a significant environmental concern due to its high color intensity, toxicity, chemical stability, and resistance to conventional treatment. This work prepared Ti3+ self-doped TiO2 photocatalysts using a simple sol-gel route combined with NaBH4-assisted calcination. The strategy was designed to generate intrinsic lattice defects, mainly Ti3+ centers and oxygen vacancies, in anatase TiO2 without the use of flammable reducing gases or complicated post-synthesis treatments. The influence of calcination temperature was examined by preparing samples at 200, 500, and 600 °C. XRD results showed that the selected samples maintained the anatase TiO2 phase, indicating that the reduction-calcination treatment did not produce detectable secondary crystalline phases. Higher calcination temperature increased the degree of crystallinity, with crystallinity values of 59.1%, 68.2%, and 69.6% for the samples of T-200, T-500, and T-600, respectively. Raman spectra confirmed the anatase framework and revealed features related to lattice disorder in the reduced samples, while EPR analysis directly confirmed Ti3+/oxygen-vacancy defect sites, with the strongest signal observed for T-600. UV-vis DRS demonstrated that the samples calcined at 500 and 600 °C absorbed more strongly in the visible region. The T-600 sample showed an effective band gap of 2.42 eV, evidencing that defect-related states contributed to broader light harvesting. Photocatalytic evaluation indicated that methylene blue degradation improved with increasing calcination temperature, and the best performance was obtained using T-600, with an apparent rate constant of 0.017 min-1. Reusability testing showed that T-600 retained activity for three cycles, although the rate constant decreased to 0.0116 and 0.0089 min-1 in the second and third cycles, respectively. The enhanced activity is attributed to the combined contribution of higher anatase crystallinity, improved visible-light response, and an appropriate concentration of Ti3+-oxygen vacancy sites that support charge separation and reactive oxygen species formation.