Laser irradiation in water for the novel, scalable synthesis of black TiOx photocatalyst for environmental remediation

Massimo Zimbone, Giuseppe Cacciato, Mohamed Boutinguiza, Vittorio Privitera and Maria Grazia Grimaldi
Beilstein J. Nanotechnol. 2017, 8, 196–202. https://doi.org/10.3762/bjnano.8.21

Cite the Following Article

Laser irradiation in water for the novel, scalable synthesis of black TiOx photocatalyst for environmental remediation
Massimo Zimbone, Giuseppe Cacciato, Mohamed Boutinguiza, Vittorio Privitera and Maria Grazia Grimaldi
Beilstein J. Nanotechnol. 2017, 8, 196–202. https://doi.org/10.3762/bjnano.8.21

How to Cite

Zimbone, M.; Cacciato, G.; Boutinguiza, M.; Privitera, V.; Grimaldi, M. G. Beilstein J. Nanotechnol. 2017, 8, 196–202. doi:10.3762/bjnano.8.21

Download Citation

Citation data can be downloaded as file using the "Download" button or used for copy/paste from the text window below.
Citation data in RIS format can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Zotero.

Presentation Graphic

Picture with graphical abstract, title and authors for social media postings and presentations.
Format: PNG Size: 652.1 KB Download

Citations to This Article

Up to 20 of the most recent references are displayed here.

Scholarly Works

  • Giuffrida, F.; Calcagno, L.; Leonardi, A.; Cantarella, M.; Zimbone, M.; Impellizzeri, G. Enhancing the photocatalytic properties of doped TiO2 nanowires grown by seed-assisted thermal oxidation. Thin Solid Films 2023, 771, 139783. doi:10.1016/j.tsf.2023.139783
  • Janczarek, M.; Endo-Kimura, M.; Wang, K.; Wei, Z.; Akanda, M. M. A.; Markowska-Szczupak, A.; Ohtani, B.; Kowalska, E. Is Black Titania a Promising Photocatalyst?. Catalysts 2022, 12, 1320. doi:10.3390/catal12111320
  • Šuligoj, A.; Cerc Korošec, R.; Žerjav, G.; Novak Tušar, N.; Lavrenčič Štangar, U. Solar-Driven Photocatalytic Films: Synthesis Approaches, Factors Affecting Environmental Activity, and Characterization Features. Topics in current chemistry (Cham) 2022, 380, 51. doi:10.1007/s41061-022-00409-2
  • Yang, F.; Zhang, Z.; Li, Y.; Xiao, C.; Zhang, H.; Li, W.; Zhan, L.; Liang, G.; Chang, Y.; Ning, C.; Zhai, J.; Zhou, Z.; Yu, P. In Situ Construction of Black Titanium Oxide with a Multilevel Structure on a Titanium Alloy for Photothermal Antibacterial Therapy. ACS biomaterials science & engineering 2022, 8, 2419–2427. doi:10.1021/acsbiomaterials.2c00256
  • Touni, A.; Liu, X.; Kang, X.; Carvalho, P. A.; Diplas, S.; Both, K. G.; Sotiropoulos, S.; Chatzitakis, A. Galvanic Deposition of Pt Nanoparticles on Black TiO2 Nanotubes for Hydrogen Evolving Cathodes. ChemSusChem 2021, 14, 4993–5003. doi:10.1002/cssc.202101559
  • Janczarek, M.; Kowalska, E. Defective Dopant-Free TiO2 as an Efficient Visible Light-Active Photocatalyst. Catalysts 2021, 11, 978. doi:10.3390/catal11080978
  • Linley, S.; Thomson, N. R. Environmental Applications of Nanotechnology: Nano-enabled Remediation Processes in Water, Soil and Air Treatment. Water, Air, & Soil Pollution 2021, 232, 1–50. doi:10.1007/s11270-021-04985-9
  • Muc, B. T.; Vella, D.; Lukač, N.; Kos, M.; Jezeršek, M. Generation of a focused pressure wave and localized cavitation clouds using a metal-semiconductor Ti/black-TiOx optoacoustic lens. Results in Physics 2021, 20, 103721. doi:10.1016/j.rinp.2020.103721
  • Zahra, Z.; Habib, Z.; Chung, S.; Badshah, M. A. Exposure Route of TiO2 NPs from Industrial Applications to Wastewater Treatment and Their Impacts on the Agro-Environment. Nanomaterials (Basel, Switzerland) 2020, 10, 1469. doi:10.3390/nano10081469
  • Trzciński, K.; Szkoda, M.; Nowak, A.; Łapiński, M.; Lisowska-Oleksiak, A. Widening of the electroactivity potential range by composite formation - capacitive properties of TiO2/BiVO4/PEDOT:PSS electrodes in contact with an aqueous electrolyte. Beilstein journal of nanotechnology 2019, 10, 483–493. doi:10.3762/bjnano.10.49
  • Zimbone, M.; Cacciato, G.; Boutinguiza, M.; Gulino, A.; Cantarella, M.; Privitera, V.; Grimaldi, M. G. Hydrogenated black-TiOx: A facile and scalable synthesis for environmental water purification. Catalysis Today 2019, 321-322, 146–157. doi:10.1016/j.cattod.2018.03.040
  • Li, H.; Ji, J.; Cheng, C.; Liang, K. Preparation of phenol-formaldehyde resin-coupled TiO2 and study of photocatalytic activity during phenol degradation under sunlight. Journal of Physics and Chemistry of Solids 2018, 122, 25–30. doi:10.1016/j.jpcs.2018.06.012
  • Larue, C.; Baratange, C.; Vantelon, D.; Khodja, H.; Surblé, S.; Elger, A.; Carrière, M. Influence of soil type on TiO2 nanoparticle fate in an agro-ecosystem. The Science of the total environment 2018, 630, 609–617. doi:10.1016/j.scitotenv.2018.02.264
  • Jiang, L.; Li, Y.; Yang, H.; Yang, Y.; Liu, J.; Yan, Z.; Xiang, L.; He, J.; Wang, J. Low-Temperature Sol-Gel Synthesis of Nitrogen-Doped Anatase/Brookite Biphasic Nanoparticles with High Surface Area and Visible-Light Performance. Catalysts 2017, 7, 376. doi:10.3390/catal7120376
  • Liu, Y.; Zhang, Y.; Wang, L.; Yang, G.; Shen, F.; Deng, S.; Zhang, X.; He, Y.; Hu, Y.; Chen, X. Fast and Large-Scale Anodizing Synthesis of Pine-Cone TiO2 for Solar-Driven Photocatalysis. Catalysts 2017, 7, 229. doi:10.3390/catal7080229
  • Spucches, D.; Zimbone, M.; Cacciato, G.; Ruffino, F.; Privitera, V.; Grimaldi, M. G. Optical and morphological evolution of black TiOx synthesized in water by Nd:YAG laser. physica status solidi c 2017, 14, 1700134. doi:10.1002/pssc.201700134
Other Beilstein-Institut Open Science Activities