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Editorial

Visible-Light-Active Photocatalysts for Environmental Remediation and Organic Synthesis

Department of Industrial Engineering, University of Salerno, Via Giovanni Paolo II, 132, 84084 Fisciano, Italy
Photochem 2021, 1(3), 460-461; https://doi.org/10.3390/photochem1030029
Submission received: 4 November 2021 / Accepted: 8 November 2021 / Published: 11 November 2021
In recent years, the formulation of innovative photocatalysts activated by visible or solar light has been attracting increasing attention because of their notable potential for environmental remediation and use in organic synthesis reactions. Generally, the strategies for the development of visible-light-active photocatalysts are mainly focused on enhancing degradation efficiency (in the case of environmental remediation) or increasing selectivity toward the desired product (in the case of organic synthesis). These goals can be achieved by doping the semiconductor lattice with metal and/or non-metal elements in order to reduce band gap energy, thereby providing the semiconductor with the ability to absorb light at a wavelength higher than the UV range. Other interesting options are the formulation of different types of heterojunctions (to increase visible absorption properties and to reduce the recombination rate of charge carriers) and the development of innovative catalytic materials with semiconducting properties. This Special Issue is focused on visible-light-active photocatalysts for environmental remediation and organic synthesis, featuring the state of the art as well as advances in this field.
Currently, this issue has collected six papers addressing the preparation and characterization of novel photocatalytic materials and their use in the visible (or solar) light-driven photocatalytic removal of pollutants from liquid phases and in the inactivation of bacteria [1,2,3,4,5,6]. The photocatalytic efficiencies of Ag3PO4 nanoparticles [2], Bi12NiO19 sillenite crystals [3], g-C3N4/nanodiamond heterostructures [4], Ag/Cu2O [5], and activated carbon/TiO2 [6] are shown. An improvement in photocatalytic activity toward the simultaneous removal of phenol and Cr(VI) under visible light is also evidenced by MoS2 decorated on a g-C3N4 heterostructure catalyst [1].
Moreover, a review article highlighting recent progress in the development of visible-light-active heterogeneous photocatalysts based on the design of sustainable synthetic methodologies and the use of biomass and waste as sources of chemicals embedded in the final photoactive materials [7] is also included in this Special Issue.
I sincerely hope that additional papers and/or review articles will be submitted to this interesting Special Issue in order to achieve a collection covering all of the aspects related to the preparation and chemical–physical characterization of different types of photocatalyst to be studied both for environmental purposes and in the selective synthesis of organic compounds (e.g., phenol from benzene, aniline from nitrobenzene, and methanol from methane).
The Guest Editor would like to express their sincere appreciation to all of the authors and reviewers for their contribution to this Special Issue of Photochem. Special thanks should also be given to the MDPI assistant team for their constant and kind support.

Funding

This research received no external funding.

Conflicts of Interest

The author declares no conflict of interest.

References

  1. Rapti, I.; Bairamis, F.; Konstantinou, I. g-C3N4/MoS2 Heterojunction for Photocatalytic Removal of Phenol and Cr (VI). Photochem 2021, 1, 358–370. [Google Scholar] [CrossRef]
  2. Panthi, G.; Park, M. Electrospun Carbon Nanofibers Decorated with Ag3PO4 Nanoparticles: Visible-Light-Driven Photocatalyst for the Photodegradation of Methylene Blue. Photochem 2021, 1, 345–357. [Google Scholar] [CrossRef]
  3. Brahimi, B.; Kenfoud, H.; Benrighi, Y.; Baaloudj, O. Structural and Optical Properties of Bi12NiO19 Sillenite Crystals: Application for the Removal of Basic Blue 41 from Wastewater. Photochem 2021, 1, 319–329. [Google Scholar] [CrossRef]
  4. Kublik, N.; Gomes, L.E.; Plaça, L.F.; Lima, T.H.; Abelha, T.F.; Ferencz, J.A.; Caires, A.R.; Wender, H. Metal-Free g-C3N4/Nanodiamond Heterostructures for Enhanced Photocatalytic Pollutant Removal and Bacteria Photoinactivation. Photochem 2021, 1, 302–318. [Google Scholar] [CrossRef]
  5. Chen, W.-S.; Chen, J.-Y. Photocatalytic Decomposition of Nitrobenzene in Aqueous Solution by Ag/Cu2O Assisted with Persulfate under Visible Light Irradiation. Photochem 2021, 1, 220–236. [Google Scholar] [CrossRef]
  6. Mondol, B.; Sarker, A.; Shareque, A.; Dey, S.C.; Islam, M.T.; Das, A.K.; Shamsuddin, S.M.; Molla, M.; Islam, A.; Sarker, M. Preparation of activated carbon/TiO2 nanohybrids for photodegradation of reactive red-35 dye using sunlight. Photochem 2021, 1, 54–66. [Google Scholar] [CrossRef]
  7. Zuliani, A.; Cova, C.M. Green Synthesis of Heterogeneous Visible-Light-Active Photocatalysts: Recent Advances. Photochem 2021, 1, 147–166. [Google Scholar] [CrossRef]
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MDPI and ACS Style

Vaiano, V. Visible-Light-Active Photocatalysts for Environmental Remediation and Organic Synthesis. Photochem 2021, 1, 460-461. https://doi.org/10.3390/photochem1030029

AMA Style

Vaiano V. Visible-Light-Active Photocatalysts for Environmental Remediation and Organic Synthesis. Photochem. 2021; 1(3):460-461. https://doi.org/10.3390/photochem1030029

Chicago/Turabian Style

Vaiano, Vincenzo. 2021. "Visible-Light-Active Photocatalysts for Environmental Remediation and Organic Synthesis" Photochem 1, no. 3: 460-461. https://doi.org/10.3390/photochem1030029

APA Style

Vaiano, V. (2021). Visible-Light-Active Photocatalysts for Environmental Remediation and Organic Synthesis. Photochem, 1(3), 460-461. https://doi.org/10.3390/photochem1030029

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