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Editorial

Advanced Photocatalytic Nanomaterials for Energy Conversion and Environmental Remediation

1
School of Physics, Beihang University, Beijing 100191, China
2
Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing 100190, China
3
School of Chemical Engineering, Dalian University of Technology, Dalian 116024, China
*
Author to whom correspondence should be addressed.
Nanomaterials 2023, 13(15), 2246; https://doi.org/10.3390/nano13152246
Submission received: 22 July 2023 / Accepted: 26 July 2023 / Published: 3 August 2023
With the rapid development of the economy and society, the problem of energy shortage and environmental pollution is receiving more and more attention. Researchers worldwide have been exploring new technologies to produce clean energy and decrease pollution. Photocatalytic technology is one of the most promising long-term solutions for producing valuable chemical fuels and degrading pollutants directly from green solar energy. Photocatalytic materials, most of which are nanomaterials, have become a research hotspot in the field of materials.
This Special Issue compiles eleven articles dedicated to photocatalysts, including six on hydrogen production, four on organics degradation, and one combining both aspects. A good photocatalyst must meet two conditions: a broad range of light absorption and a high utilization rate of photogenerated charge-carriers. In general, most photocatalytic semiconductors can only work under violet and short-wavelength light because of their wide band gaps. In addition, the electrons and holes on a single photocatalyst exhibit a high recombination rate, leading to low utilization of the photo-generated charges. As a result, the photocatalytic performance of a single material is often very poor. These eleven papers were devoted to achieving high-efficiency photocatalysts by broadening the light absorption range, inhibiting the photo-induced electrons and holes recombination, and promoting the extraction of photo-induced charges for chemical reactions. The strategies include defect engineering [1], element doping [2,3], morphology manipulation [3,4], and binary and ternary composite fabrication [5,6,7,8,9,10,11]. Herein, we will provide a brief introduction to these works.
Defect engineering and element doping can modulate the band structure of a semiconductor and have, thus, been widely used to broaden the light absorption range and improve the utilization of photo-generated charges of photocatalytic materials. A series of black TiO2 was prepared by Zhou et al. [1] by altering the calcination atmospheres of the samples. Their results show that a vacuum atmosphere favors the formation of oxygen vacancies in TiO2, which leads to better visible-light adsorption, a narrower bandgap, and higher photo-induced charge separation, thus achieving a higher photocatalytic degradation capacity for methylene blue (MB) in comparison with inert atmospheres (He and N2). Using density functional theory (DFT) calculation, Jaramillo-Fierro et al. [2] predicted that La could be thermodynamically stably incorporated on the surface of ZnTiO3 and decrease the band gap from 3.16 eV to 2.92 eV. Furthermore, MB adsorption on the La/ZnTiO3 surface is much easier than on ZnTiO3, which indicates that introducing La will increase the photocatalytic MB degradation ability of ZnTiO3. Lu et al. [3] prepared an N, P self-doped carbon material with unique surface wrinkling and a hierarchical porous structure. This special morphology, together with N, P self-doping, improves the light absorption and the charge-carrier separation/transfer efficiency, and, thus, enhances the photocatalytic hydrogen production performance.
When two or three semiconductors form a composite, charge transfer usually occurs at the interface, which generally promotes the separation of electrons and holes. As a result, forming binary and ternary composites can also enhance the photocatalytic activity by increasing the utilization efficiency of the photo-generated charge-carriers, aside from broadening light absorption. Chou et al. [4]. synthesized a honeycomb-like BiFeO3/g-C3N4 composite, which had a much better photocatalytic ability to degrade rhodamine B (RhB) than pristine g-C3N4 and BiFeO3. The unique morphology facilitates the diffusion of the reactants and the utilization of light, while the polarized BiFeO3 surface tightly binds the dye molecules. Furthermore, the Z-scheme heterojunction and the ferroelectric effect synergistically promote the separation and migration of the photo-generated charges. Dang et al. [5]. prepared a binary type-II heterojunction photocatalyst from g-C3N4 and K7HNb6O19. The type-II heterojunction induces interfacial charge transfer and inhibits the recombination of photo-generated electrons and holes, hence displaying an excellent hydrogen evolution rate. Cabot et al. [6] synthesized Cu2O-TiO2 type-II heterojunctions for photocatalytic ethanol dehydrogenation. Adding Cu2O extends the light absorption towards the visible range, and charge transfer on the interface promotes the utilization of photo-generated charges. Hence, the Cu2O-TiO2 exhibits a hydrogen evolution rate tenfold higher in comparison with bare TiO2. Wang et al. [7] reported a plasma Ag-modified α-Fe2O3/g-C3N4 S-Scheme heterojunction that performed much more efficiently than the original g-C3N4 in terms of photocatalytic degradation of tetracycline and hydrogen production. The introduction of Ag nanoparticles expands the light absorption and induces high-energy electrons and photothermal effects from the local surface plasmon resonance effect, which leads to improved photocatalytic activity with joint contributions from the 2D/2D S-Scheme induced electron–hole separation. Kim et al. [8] deposited narrow-bandgap Ag3PO4 on flower-like TiO2@Ti3C2 to obtain a ternary composite with broad-range visible-light absorption, a high surface area, and efficient separation of photo-generated electrons and holes. The Ag3PO4-deposited TiO2@Ti3C2 is able to efficiently degrade organic dyes, including RhB, MB, crystal violet (CV), and methylene orange (MO), under solar light irradiation.
Photocatalytic semiconductors usually lack active sites, so co-catalysts have been extensively used to promote the photocatalytic activity. They extract photo-generated charge-carriers from the photocatalysts and offer active sites for the chemical reactions. Zhang et al. [9] selectively anchored a Pt co-catalyst to specific nitrogen species on the surface of g-C3N4 to achieve highly dispersed homogeneous Pt nanoparticles containing Pt0 and Pt2+ species. In comparison with the non-selectively deposed Pt nanoparticles, the highly dispersed Pt co-catalyst performs significantly better in promoting the photocatalytic hydrogen production of g-C3N4. Cai et al. [10] deposited a CoHxPOy co-catalyst on CdIn2S4 nanosheets. The CoHxPOy accelerates the hole transfer and inhibits the electron and hole recombination, thus promoting the photocatalytic hydrogen evolution reaction activity under visible light. CoHxPOy nanoparticles exhibit a better hydrogen evolution reaction improvement effect on the CdIn2S4 photocatalyst than Pt nanoparticles. Wang et al. [11] prepared porous hollow spherical Pd/CdS/NiS, wherein the Pd and NiS co-catalysts were loaded inside and outside the hollow CdS shell layer. This special structure spatially separates the photo-generated electrons and holes, therefore remarkably increasing the photocatalytic hydrogen production rate of CdS under visible light.
In summary, the works reported in these eleven papers cover various aspects of photocatalytic materials from both theoretical calculation-based and experimental perspectives. In these works, measures of introducing dopants, creating defects, modulating morphology, and forming composite materials are proposed in order to broaden the optical absorption and promote the utilization rate of photo-generated charges, aiming to enhance photocatalytic organics degradation and hydrogen production. These strategies will have important reference value for the development of high-efficiency photocatalytic materials with wide spectral response, and, thus, will be of broad interest to general readers.

Author Contributions

J.Z. wrote this Editorial Letter. Y.C. and J.H. provided their feedback. All authors have read and agreed to the published version of the manuscript.

Acknowledgments

We would like to thank all the authors for submitting their works to this Special Issue. We are particularly grateful to all the reviewers for enhancing the quality and impact of the manuscripts. We are also deeply grateful to Steve Yan and the editorial assistants for their great support in making the organization and publication of this Special Issue smooth and efficient.

Conflicts of Interest

The authors declare no conflict of interest.

References

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  11. Wang, X.; Zhao, F.; Zhang, N.; Wu, W.L.; Wang, Y.H. Hollow Spherical Pd/CdS/NiS with Carrier Spatial Separation for Photocatalytic Hydrogen Generation. Nanomaterials 2023, 13, 1326. [Google Scholar] [CrossRef] [PubMed]
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MDPI and ACS Style

Zhang, J.; Chen, Y.; Hou, J. Advanced Photocatalytic Nanomaterials for Energy Conversion and Environmental Remediation. Nanomaterials 2023, 13, 2246. https://doi.org/10.3390/nano13152246

AMA Style

Zhang J, Chen Y, Hou J. Advanced Photocatalytic Nanomaterials for Energy Conversion and Environmental Remediation. Nanomaterials. 2023; 13(15):2246. https://doi.org/10.3390/nano13152246

Chicago/Turabian Style

Zhang, Junying, Yong Chen, and Jungang Hou. 2023. "Advanced Photocatalytic Nanomaterials for Energy Conversion and Environmental Remediation" Nanomaterials 13, no. 15: 2246. https://doi.org/10.3390/nano13152246

APA Style

Zhang, J., Chen, Y., & Hou, J. (2023). Advanced Photocatalytic Nanomaterials for Energy Conversion and Environmental Remediation. Nanomaterials, 13(15), 2246. https://doi.org/10.3390/nano13152246

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