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Search Results (187)

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Keywords = photoelectrochemical stability

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16 pages, 1103 KB  
Review
Recent Advances in Two-Dimensional Bismuth Oxysulfide
by Donghun Lee
Int. J. Mol. Sci. 2026, 27(15), 6607; https://doi.org/10.3390/ijms27156607 - 24 Jul 2026
Viewed by 73
Abstract
Two-dimensional (2D) semiconductors have attracted significant attention for their potential in low-power and high-performance electronic applications. Among these, bismuth oxysulfide (Bi2O2S) has recently emerged as a candidate owing to its wide bandgap, low effective electron mass, and environmental stability. [...] Read more.
Two-dimensional (2D) semiconductors have attracted significant attention for their potential in low-power and high-performance electronic applications. Among these, bismuth oxysulfide (Bi2O2S) has recently emerged as a candidate owing to its wide bandgap, low effective electron mass, and environmental stability. This review summarizes the synthesis strategies and device applications of 2D Bi2O2S. It systematically analyzes recent advancements in synthesis methodologies, ranging from scalable solution-based synthesis to back-end-of-line compatible, low-temperature metal–organic chemical vapor deposition. Furthermore, defect engineering, particularly through oxygen-vacancy control and doping, is discussed as a strategy to modulate the electronic band structure, enhance broadband nonlinear optical properties, and accelerate the photocarrier relaxation kinetics of 2D Bi2O2S. These tunable characteristics have enabled 2D Bi2O2S to be employed in electronic and optoelectronic devices. The review, therefore, discusses recent developments in device applications of Bi2O2S, including field-effect transistors, broadband photodetectors, and flexible photoelectrochemical sensors. Finally, the remaining challenges, such as wafer-scale single-crystal growth and reliable p-type doping, and future research directions are discussed for integrating Bi2O2S into three-dimensional integrated circuits and neuromorphic computing. Full article
30 pages, 10655 KB  
Article
Synergistic Modulation of the Bandgap and Electrochemical Properties of HKUST-1 via Curcumin Infiltration
by Jesús S. Rodríguez-Girón, Luis A. Alfonso-Herrera, J. Manuel Mora-Hernández, Alejandra M. Navarrete-López and Hiram I. Beltrán
Processes 2026, 14(13), 2193; https://doi.org/10.3390/pr14132193 - 5 Jul 2026
Viewed by 402
Abstract
We report the study of Cur@HKUST-1 composites, obtained through one-pot infiltration of HKUST-1 with curcumin (Cur) as a guest-sensitizing molecule. Cur features a HOMO energy above the valence band (VB) of HKUST-1, enabling modulation of the electronic structure of the [...] Read more.
We report the study of Cur@HKUST-1 composites, obtained through one-pot infiltration of HKUST-1 with curcumin (Cur) as a guest-sensitizing molecule. Cur features a HOMO energy above the valence band (VB) of HKUST-1, enabling modulation of the electronic structure of the host framework by introducing additional energy states within the bandgap. Structural characterization, including X-ray diffraction (XRD), Fourier-transform infrared spectroscopy (FTIR), and thermogravimetric analysis (TGA), confirmed successful guest incorporation and preservation of HKUST-1 crystallinity. An initial Cur amount of 50% (relative to the BTC linker) was added to the synthetic mixture, and differential UV-vis analysis has shown an infiltration efficiency of 28.0%, corresponding to an infiltration degree of 14% in the Cur@HKUST-1 composite, highlighting a challenging loading process, primarily due to the size and conformations of the Cur structure. Textural analysis revealed a reduction in surface area and pore volume, consistent with a high degree of guest infiltration. Optical properties evaluated by diffuse reflectance UV-vis spectroscopy revealed new absorption bands and a notable decrease of 1.83 eV in the bandgap energy from 3.68 eV (HKUST-1) to 1.85 eV (Cur@HKUST-1) due to guest molecule infiltration. Density functional theory (DFT) calculations supported the experimental findings, showing that guest HOMOs promoted the formation of a new valence band (VB), while the original VB remains lower in energy. Density-of-states analysis confirmed that the new VB originates from 2p orbitals belonging to the guest, while the conduction band remains predominantly Cu-based from the HKUST-1 framework. Photoelectrochemical characterization revealed that the guest-modified material exhibits an enhanced photocurrent response compared to HKUST-1. Cur@HKUST-1 displayed higher stability and stronger photocurrent density, attributed to its narrower bandgap and increased charge carrier density. These results demonstrate the potential of rational guest selection to engineer band structure and improve the light-harvesting performance of MOFs in solar-driven applications. Full article
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64 pages, 6410 KB  
Review
Engineering of Optoelectronic Devices for Renewable Energy Applications
by José Pereira, Reinaldo Souza and Ana Moita
Micromachines 2026, 17(6), 758; https://doi.org/10.3390/mi17060758 - 22 Jun 2026
Viewed by 369
Abstract
Optoelectronic devices are emerging as a cornerstone of advanced renewable energy technologies, offering innovative routes for energy harvesting, conversion, and management with high efficiency and versatility. This review summarizes recent advances in the semiconductor materials engineering field, device configurations, and light–matter interaction mechanisms [...] Read more.
Optoelectronic devices are emerging as a cornerstone of advanced renewable energy technologies, offering innovative routes for energy harvesting, conversion, and management with high efficiency and versatility. This review summarizes recent advances in the semiconductor materials engineering field, device configurations, and light–matter interaction mechanisms that underpin advanced optoelectronic systems for solar energy harvesting, solar-driven chemical conversion, and smart grid integration, among others. Emphasis is placed on the breakthroughs achieved in the perovskite and hybrid photovoltaics, photoelectrochemical energy conversion, and nanostructured optoelectronic platforms that enable much-increased light absorption, reduced recombination losses, and scalable large-scale fabrications. Moreover, the challenges closely linked with long-term stability, environmental durability and benevolence, and worldwide deployment are critically addressed, together with the emerging opportunities in AI design, tandem device technological solutions, integrated energy systems, and machine learning approaches for optimizing device performance, thermal management, and energy storage capabilities. Finally, the present review concludes by outlining the future research directions that could accelerate the transition toward high-performance, cost-effective, and sustainable optoelectronic solutions responsive to global renewable energy requirements. Full article
(This article belongs to the Special Issue Emerging Trends in Optoelectronic Device Engineering, 2nd Edition)
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29 pages, 4857 KB  
Review
Progress in (Photo)electrochemical Biosensors for the Detection of Amyloid-Beta Oligomer
by Yaliang Huang, Ning Wang, Xinyao Yi and Ning Xia
Biosensors 2026, 16(6), 349; https://doi.org/10.3390/bios16060349 - 22 Jun 2026
Viewed by 625
Abstract
Alzheimer’s disease (AD) has become a neurodegenerative disease with an increasing incidence rate and a large economic and social burden worldwide. Amyloid-beta oligomer (AβO) has been confirmed as a key neurotoxic species and a core diagnostic biomarker in AD. Traditional methods for AβO [...] Read more.
Alzheimer’s disease (AD) has become a neurodegenerative disease with an increasing incidence rate and a large economic and social burden worldwide. Amyloid-beta oligomer (AβO) has been confirmed as a key neurotoxic species and a core diagnostic biomarker in AD. Traditional methods for AβO detection have drawbacks, such as cumbersome operation, high cost, and dependence on sophisticated instruments, hindering their transformation into fast and real-time detection techniques. (Photo)electrochemical biosensors have attracted much attention due to their inherent advantages, such as high sensitivity, low cost, portability, and ease of miniaturization. This review systematically summarizes the latest progress of (photo)electrochemical biosensors for AβO detection, mainly based on two sensing modes: direct detection and sandwich-type detection. We comprehensively elaborated on the sensing performances and recognition elements, such as antibodies, aptamers, peptides, and molecularly imprinted polymers. The integration of functional nanomaterials and signal amplification strategies was emphasized to improve the sensitivity, selectivity, and stability of biosensors. In addition, we discussed the existing challenges and looked forward to the future development direction for the early diagnosis of AD. This article aims to provide a systematic reference for the rational design and practical application of advanced biosensors in biomarker detection and AD-related precision medicine. Full article
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22 pages, 1728 KB  
Review
Photobiological Hydrogen Production in Cyanobacteria: Advances, Challenges, and Perspectives
by Wangruixue Tang, Zonghao Cheng, Weide Li, Pengsong Li, Ming Chen and Yujie Fu
Fermentation 2026, 12(6), 273; https://doi.org/10.3390/fermentation12060273 - 5 Jun 2026
Viewed by 804
Abstract
Hydrogen molecules can serve as a promising clean energy supplier; conventional hydrogen production usually relies on fossil fuels and leads to intense greenhouse gas emissions. Significant emphasis has been placed on exploring sustainable and renewable hydrogen resources. Cyanobacteria can convert solar energy into [...] Read more.
Hydrogen molecules can serve as a promising clean energy supplier; conventional hydrogen production usually relies on fossil fuels and leads to intense greenhouse gas emissions. Significant emphasis has been placed on exploring sustainable and renewable hydrogen resources. Cyanobacteria can convert solar energy into hydrogen through oxygen-sensitive hydrogenases or nitrogenases. However, practical application remains severely constrained by oxygen-evolving photosynthesis, inefficient electron allocation, and the low metabolic priority of hydrogen production in cyanobacterial cells. In recent years, substantial progress has been achieved in understanding hydrogen metabolism and improving hydrogen production through physiological regulation, hydrogenase engineering, photosynthetic electron transport chain (PETC) reconstruction, metabolic engineering, and biohybrid systems. This review summarizes recent advances in cyanobacterial hydrogen production, with particular emphasis on hydrogen-producing pathways, key limiting factors, and current engineering strategies. Importantly, this review highlights that many currently reported strategies still provide only transient improvements because hydrogen production is constrained by system-level conflicts among photosynthesis, redox balance, carbon fixation, and cellular stability. In addition, emerging approaches including metagenomic resource mining, synthetic biology, AI-assisted engineering, biohybrid photoelectrochemical systems, and techno-economic optimization are discussed as potential directions for improving the efficiency, scalability, and practical feasibility of cyanobacterial hydrogen production technologies in the future. Full article
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17 pages, 5995 KB  
Article
Polyhedral Self-Assembled Spherical Titania Modified with Iron for Enhanced Photocatalytic Activity
by Zhishun Wei, Yuqi Xu, Fitri Rizki Amalia, Xi Peng, Jiajie Sun, Sha Chen, Guoqiang Yi, Ying Chang, Shuaizhi Zheng and Ewa Kowalska
Catalysts 2026, 16(6), 500; https://doi.org/10.3390/catal16060500 - 29 May 2026
Viewed by 376
Abstract
In this study, polyhedral self-assembled spherical titania (TS) photocatalyst was successfully synthesized via a one-step hydrothermal method from titanium chloride, sodium dodecyl sulfate and sulfuric acid. Titania modification with iron was carried out through the same procedure by the addition of different amounts [...] Read more.
In this study, polyhedral self-assembled spherical titania (TS) photocatalyst was successfully synthesized via a one-step hydrothermal method from titanium chloride, sodium dodecyl sulfate and sulfuric acid. Titania modification with iron was carried out through the same procedure by the addition of different amounts of iron(III) chloride to the substrate mixture. Various methods were applied for sample characterization, e.g., XRD, SEM, TEM, XPS, UV-vis DRS, and photo-electrochemical measurements, such as EIS, CV, transient photocurrent, whereas photocatalytic activity was investigated for hydrogen evolution under UV/vis and oxidative decomposition of antibiotics under UV and/or vis, including also tests with scavengers. It has been found that iron was both incorporated in the titania structure (doping) and adsorbed on its surface. Although iron presence has hardly influenced the properties (slight changes in morphology, bandgap energy, and crystallite size), the photocatalytic activity has increased significantly. Therefore, it is proposed that iron might work as an electron sink, hindering the charge carriers’ recombination. Linear evolution of hydrogen, recycling experiments and characterization of samples after recycling have confirmed a good stability of iron-modified titania. Full article
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13 pages, 2124 KB  
Article
Vanadium Carbide (VC) as a Noble-Metal-Free Cocatalyst for Enhanced Photocatalytic H2 Evolution on CdS
by Mengfan Niu, Rongxin Lin, Baiqing Li, Qinqin Liu, Guoting Xu, Mengyao Xiong, Mei Du, Shuai Yuan and Abdukader Abdukayum
Catalysts 2026, 16(6), 498; https://doi.org/10.3390/catal16060498 - 28 May 2026
Viewed by 405
Abstract
Photocatalytic water splitting for hydrogen (H2) evolution is a critical sustainable energy strategy, and cadmium sulfide (CdS) is a promising visible-light photocatalyst due to its suitable band gap. However, the practical application of pure CdS is severely hindered by rapid charge-carrier [...] Read more.
Photocatalytic water splitting for hydrogen (H2) evolution is a critical sustainable energy strategy, and cadmium sulfide (CdS) is a promising visible-light photocatalyst due to its suitable band gap. However, the practical application of pure CdS is severely hindered by rapid charge-carrier recombination and significant photocorrosion. In this work, we constructed a CdS/vanadium carbide (VC) photocatalyst via a simple ultrasonic method. The structural, morphological, optical, and photoelectrochemical properties of the composites were systematically investigated. Under visible light (λ ≥ 420 nm) and with 0.35 M Na2S-0.25 M Na2SO3 as the sacrificial agent, the optimized composite featuring a CdS:VC mass ratio of 10:1 (denoted CV-10) achieved a remarkable hydrogen evolution rate of 3485.6 μmol g−1 h−1. This rate represents a 60-fold enhancement over pure-phase CdS and significantly surpasses that of a conventional Pt/CdS catalyst. Furthermore, the CV-10 composite demonstrated excellent stability, showing no activity decay after 16 h of cycling. Spectroscopic and electrochemical analyses revealed that the metallic VC can function as an efficient cocatalyst, accelerating charge separation and transfer while suppressing electron–hole recombination. This work demonstrates that noble-metal-free VC is a highly effective and low-cost cocatalyst, providing a new pathway for designing efficient and stable CdS-based photocatalysts in solar hydrogen production. Full article
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16 pages, 25047 KB  
Review
Integrated Conversion of Plastic Waste and CO2 into Value-Added Chemicals and Fuels via Electrochemical, and Photoelectrochemical Pathways
by Zohreh Masoumi, Shokouh Masoumilari, Simin Lee, Daeseung Kyung and Meysam Tayebi
Energies 2026, 19(11), 2588; https://doi.org/10.3390/en19112588 - 27 May 2026
Cited by 1 | Viewed by 484
Abstract
The concurrent accumulation of plastic waste and CO2 emissions poses a critical environmental challenge while presenting a compelling opportunity for integrated carbon management. Coupled plastic waste reforming and CO2 conversion has recently emerged as a promising strategy to valorize these abundant [...] Read more.
The concurrent accumulation of plastic waste and CO2 emissions poses a critical environmental challenge while presenting a compelling opportunity for integrated carbon management. Coupled plastic waste reforming and CO2 conversion has recently emerged as a promising strategy to valorize these abundant waste streams into fuels and value-added chemicals, enabling a closed carbon cycle. This review systematically summarizes recent advances in integrated electrochemical and photoelectrochemical systems for the co-conversion of plastic waste and CO2. Fundamental reaction pathways, including plastic depolymerization, reforming, and oxidation, are discussed in conjunction with their thermodynamic and kinetic coupling to CO2 reduction. Particular emphasis is placed on paired electrochemical processes, such as plastic-derived alcohol oxidation coupled with CO2 reduction processes, all of which offer enhanced energy efficiency. Photoelectrochemical approaches driven by renewable energy are further highlighted for their potential to operate under mild conditions. In addition, key design strategies for catalysts and electrodes—focusing on earth-abundant materials, redox stability, interfacial engineering, and selectivity control—are critically evaluated. Finally, current challenges and future opportunities are outlined to accelerate the development of scalable, efficient, and sustainable technologies for circular chemical manufacturing. Full article
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23 pages, 26837 KB  
Article
A Three-Dimensional Interlocked Heterojunction Photoanode for Sustainable Metal Corrosion Control in Marine Environments
by Xiaoyan Liu, Chuchu Chen, Yumei Zhang, Xilong Liu, Xiurui Zhang and Leiying Han
Nanomaterials 2026, 16(11), 652; https://doi.org/10.3390/nano16110652 - 22 May 2026
Viewed by 376
Abstract
The development of highly efficient and stable photoanodes is essential for advancing photoelectrochemical cathodic protection towards practical applications. Herein, a novel ternary sulfide heterojunction was engineered through the construction of a three-dimensional interlocked architecture of ZnIn2S4 on SnIn4S [...] Read more.
The development of highly efficient and stable photoanodes is essential for advancing photoelectrochemical cathodic protection towards practical applications. Herein, a novel ternary sulfide heterojunction was engineered through the construction of a three-dimensional interlocked architecture of ZnIn2S4 on SnIn4S8 nanosheets via a sequential hydrothermal synthesis. This unique three-dimensional interlocked configuration creates an intimate interface and continuous charge transfer highways, effectively addressing the slow electron movement and poor interfacial contact that plague conventional photoelectrodes. Spectroscopic and electrochemical analyses verified the formation of a Type-II band alignment, which drives the directional migration of photogenerated electrons from ZnIn2S4 to SnIn4S8 under an intrinsic built-in electric field. Upon coupling with 304 stainless steel, the ZnIn2S4/SnIn4S3 heterojunction exhibited outstanding photoelectrochemical cathodic protection performance. It delivered impressive photocurrent densities of 15.22, 19.76, and 72.27 μA·cm−2 in 3.5 wt% NaCl, 0.1 M Na2S2O3, and 0.1 M Na2S/NaOH electrolytes, respectively, along with a prominent 720 mV cathodic potential shift in the Na2S/NaOH system. Most importantly, its good activity and stability in the scavenger-free 3.5 wt% NaCl solution and natural seawater highlight the strong practical potential of this 3D interlocked photoanode for sustainable marine metal corrosion control. Through a strategic multi-electrolyte assessment, the underlying protection mechanisms were decoupled, revealing that the synergy between the heterojunction-induced charge separation enabled by the three-dimensional interlocked structure and electrolyte-specific hole scavenging is key to the enhanced performance. Full article
(This article belongs to the Section Nanoelectronics, Nanosensors and Devices)
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17 pages, 1563 KB  
Review
Application of g-C3N4-Based Photoelectrochemical Sensor in Water Environment Monitoring
by Mingjuan Zhang, Ziyi Wei, Jingyi Zhao and Jisui Tan
Water 2026, 18(10), 1248; https://doi.org/10.3390/w18101248 - 21 May 2026
Viewed by 379
Abstract
Graphitic carbon nitride (g-C3N4), an emerging metal-free semiconductor material, has attracted considerable attention in the field of photoelectrochemical (PEC) sensing due to its unique electronic structure, excellent chemical stability, and visible-light responsiveness. This article systematically reviews recent advances in [...] Read more.
Graphitic carbon nitride (g-C3N4), an emerging metal-free semiconductor material, has attracted considerable attention in the field of photoelectrochemical (PEC) sensing due to its unique electronic structure, excellent chemical stability, and visible-light responsiveness. This article systematically reviews recent advances in research on g-C3N4-based PEC sensors applied to water environment monitoring. First, the fundamental physicochemical properties of g-C3N4 are introduced, along with its advantages and limitations in PEC sensing applications. Subsequently, four main performance enhancement strategies are outlined: heterojunction construction (including type II, Z-scheme, and S-scheme heterojunction), elemental doping and defect engineering, morphology control and nanostructure design, as well as various signal amplification approaches such as self-powered systems, dual-mode detection, and cyclic amplification. Furthermore, the current application status of these sensors in detecting typical water pollutants, including heavy metal ions (e.g., Pb2+, Cu2+, Cd2+, Hg2+), antibiotics (e.g., tobramycin, norfloxacin, kanamycin), pesticide residues (e.g., chlorpyrifos, atrazine, glyphosate), and pathogenic microorganisms (e.g., Salmonella, Candida albicans), is comprehensively reviewed, with particular emphasis on detection sensitivity, selectivity, and real-sample performance. Finally, the remaining challenges in terms of long-term stability, anti-interference capabilities in complex matrices, portability, and multifunctional integration are analyzed, and future development directions are proposed, including smartphone-based intelligent sensing, CRISPR/Cas12a-assisted signal amplification, and multi-target high-throughput detection. This review aims to provide a reference for the rational design and practical application of g-C3N4-based PEC sensors in the field of water environment monitoring. Full article
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27 pages, 1121 KB  
Review
In Situ Micro/Nanoplastic Sensing Technologies: Optical, Electrochemical and Biosensor Approaches
by Kuok Ho Daniel Tang
Microplastics 2026, 5(2), 93; https://doi.org/10.3390/microplastics5020093 - 14 May 2026
Viewed by 829
Abstract
Micro- and nanoplastic (MNP) pollution has emerged as a global environmental and health concern, driving the rapid development of sensor technologies for faster, more sensitive, and field-deployable detection. This review synthesizes recent advances in optical, electrochemical, and biosensor platforms for MNP analysis and [...] Read more.
Micro- and nanoplastic (MNP) pollution has emerged as a global environmental and health concern, driving the rapid development of sensor technologies for faster, more sensitive, and field-deployable detection. This review synthesizes recent advances in optical, electrochemical, and biosensor platforms for MNP analysis and compares their analytical performance and practical feasibility. Optical sensors, including plasmonic, spectroscopic, and colorimetric systems, enable label-free and often rapid detection with material discrimination capability, and are well-suited for screening applications, though they commonly exhibit higher detection limits and matrix interference. Electrochemical sensors demonstrate the highest analytical sensitivity overall, frequently reaching low µg L−1 to ng mL−1 levels, with strong potential for miniaturization and on-site deployment; performance is further enhanced by nanostructured electrodes, photoelectrochemical designs, and signal amplification strategies. Biosensors incorporating peptides, aptamers, enzymes, or engineered proteins provide improved polymer selectivity and enable targeted detection, but face challenges related to stability, cross-reactivity, and reproducibility in complex samples. Practically, portable electrochemical and simple optical colorimetric platforms are currently the most feasible for field use, while hybrid bio-electrochemical systems show the highest performance potential. Future research should prioritize robust selective recognition elements, antifouling interfaces, standardized validation protocols, mixed-polymer quantification models, and integration with machine learning to enable reliable, real-world MNP monitoring. Full article
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23 pages, 7285 KB  
Article
Influence of the TiO2 Precursor Phase on the Properties and Photoelectrooxidation Performance of Black TiO2-Impregnated Electrodes for Acetaminophen Degradation
by Daniel Solarte-Ferro, John Betancourt, José A. Lara Ramos, Mario Millán-Franco, Jesús E. Diosa, Oscar A. Jaramillo-Quintero, Miguel Gracia-Pinilla, Fiderman Machuca-Martínez and Edgar Mosquera-Vargas
Molecules 2026, 31(9), 1509; https://doi.org/10.3390/molecules31091509 - 1 May 2026
Viewed by 504
Abstract
Black TiO2-impregnated electrodes were prepared via a modified dip-coating method, using six deposition layers to investigate the influence of the TiO2 precursor phase (anatase, rutile, and P25) on their structural and optical properties, as well as their photoelectrooxidation performance toward [...] Read more.
Black TiO2-impregnated electrodes were prepared via a modified dip-coating method, using six deposition layers to investigate the influence of the TiO2 precursor phase (anatase, rutile, and P25) on their structural and optical properties, as well as their photoelectrooxidation performance toward acetaminophen degradation. A reductive thermal treatment under a H2/Ar atmosphere successfully modified the band gap energy and promoted the formation of oxygen vacancies (Vo) and Ti3+ species, as evidenced by UV–Vis diffuse reflectance spectroscopy and photoluminescence analysis. Among the precursor phases, anatase exhibited the most significant band gap reduction, whereas rutile and P25 showed greater structural stability after the reduction process. Photoelectrochemical experiments revealed that the supporting electrolyte plays a dominant role in the degradation process, with significantly higher removal efficiencies observed in chloride medium (0.1 M NaCl) compared with sulfate medium (0.1 M Na2SO4) due to the formation of active chlorine species. Among the tested materials, rutile- and P25-derived electrodes showed the highest degradation efficiencies, reaching concentrations (C/C0) of 0.631 and 0.650, respectively. The results highlight the combined influence of precursor phase, defect structure, and electrolyte composition on the photoelectrooxidation behavior of black TiO2 electrodes and provide insights for the design of electrochemical systems for pharmaceutical contaminants removal. Full article
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13 pages, 3360 KB  
Article
Synergistic Enhancement of Visible-Light-Driven Photocatalytic H2O2 Production over g-C3N4/ZnCdS by Zn Vacancies and Heterointerface Engineering
by Zhenyu Wang, Wei Yan, Yingcong Wei, Jing Xu, Yuee Xie, Yuanping Chen and Xiaohong Yan
Nanomaterials 2026, 16(8), 484; https://doi.org/10.3390/nano16080484 - 18 Apr 2026
Cited by 1 | Viewed by 550
Abstract
Hydrogen peroxide (H2O2) is an important green oxidant, and developing efficient visible-light-driven routes for its synthesis is highly desirable. Herein, a CN/ZnV-ZCS composite photocatalyst was constructed by coupling g-C3N4 (CN) with Zn-vacancy-containing ZnCdS (Zn [...] Read more.
Hydrogen peroxide (H2O2) is an important green oxidant, and developing efficient visible-light-driven routes for its synthesis is highly desirable. Herein, a CN/ZnV-ZCS composite photocatalyst was constructed by coupling g-C3N4 (CN) with Zn-vacancy-containing ZnCdS (ZnV-ZCS) for photocatalytic H2O2 production. The optimized CN/ZnV-10 delivered 44.58 mmol g−1 H2O2 within 60 min under 425 nm LED irradiation, outperforming pristine CN, ZCS, ZnV-ZCS, and vacancy-free CN/ZCS, with good cycling stability. Trapping and EPR results identify O2 as the key electron acceptor and ·O2 as an important intermediate. Structural characterization and XPS results indicate successful Zn-vacancy introduction, intimate heterointerface formation, and interfacial electron redistribution. Combined VB-XPS, photoelectrochemical, and reactive-species analyses suggest that Zn vacancies are favorable for O2 adsorption/activation, whereas the CN/ZnV-ZCS heterointerface promotes charge separation and migration. Based on the available evidence, a Z-scheme interfacial charge-transfer pathway is established in the CN/ZnV-ZCS system. Full article
(This article belongs to the Section Energy and Catalysis)
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16 pages, 4968 KB  
Article
Boosting CO2 Reduction with Spinel CoAl2O4 Anchored on N-Doped Graphitic Carbon
by Fei Lv, Jitao Shang, Yali Mao, Jianfeng Liu, Xue Bai, Shasha Wei, Yayun Zheng, Teng Wang and Yan Zhao
Nanomaterials 2026, 16(7), 422; https://doi.org/10.3390/nano16070422 - 31 Mar 2026
Cited by 1 | Viewed by 619
Abstract
Efficient charge transfer and effective separation of photo-generated charge carriers are pivotal to the photocatalytic process. In this study, a novel CoAl2O4@nitrogen-doped graphitic carbon (CoAl2O4@NGC) composite photocatalyst was fabricated via a stepwise hydrothermal method coupled [...] Read more.
Efficient charge transfer and effective separation of photo-generated charge carriers are pivotal to the photocatalytic process. In this study, a novel CoAl2O4@nitrogen-doped graphitic carbon (CoAl2O4@NGC) composite photocatalyst was fabricated via a stepwise hydrothermal method coupled with high-temperature calcination, and its photocatalytic performance for CO2 reduction was systematically investigated. X-ray diffraction (XRD), transmission electron microscopy (TEM), X-ray photoelectron spectroscopy (XPS) and photoelectrochemical measurements were employed to characterize the phase structure, microstructure, surface chemical state and photoelectrochemical properties of the catalyst. Spinel-structured CoAl2O4 nanoparticles were uniformly anchored on the NGC substrate, forming a well-integrated composite interface. XPS analysis confirmed the coexistence of Co2+/Co3+ mixed valence states in CoAl2O4 which provides abundant redox sites for CO2 activation. Photocatalytic tests showed that CoAl2O4@NGC exhibits excellent catalytic activity and cycling stability, with CO and CH4 yields of 27.88 μmol·g−1·h−1 and 23.90 μmol·g−1·h−1, respectively. The narrow bandgap (1.54 eV) enhances visible light absorption, while efficient electron-hole separation and reduced charge transfer resistance improve photocatalytic efficiency. Theoretical calculations further reveal that CoAl2O4@NGC lowers the adsorption free energy of CO2 and the energy barrier for COOH formation, thus facilitating the photocatalytic CO2 reduction. This work provides insights for the design of efficient and stable photocatalysts for CO2 reduction and deepens the understanding of the synergistic catalytic mechanism in the spinel/nitrogen-doped carbon composite system. Full article
(This article belongs to the Special Issue Nanostructured Materials for CO2 Conversion and Reduction)
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16 pages, 2121 KB  
Review
Photoelectrochemical Production of Peroxydisulfate (PDS), a Clean Oxidant: Recent Development and Challenges
by Zeeshan Haider, Muhammad Imran and Tahir Muhmood
Int. J. Mol. Sci. 2026, 27(7), 3066; https://doi.org/10.3390/ijms27073066 - 27 Mar 2026
Cited by 9 | Viewed by 777
Abstract
Peroxydisulfate (PDS, S2O82−) is an important oxidant for a wide range of industrial applications, including organic synthesis, polymer preparation, wastewater treatment and environmental remediation. Currently, PDS is commercially produced by electrolysis of sulfate solution. Photoelectrochemistry (PEC) provides an [...] Read more.
Peroxydisulfate (PDS, S2O82−) is an important oxidant for a wide range of industrial applications, including organic synthesis, polymer preparation, wastewater treatment and environmental remediation. Currently, PDS is commercially produced by electrolysis of sulfate solution. Photoelectrochemistry (PEC) provides an alternative approach to PDS generation by reducing the energy required to drive this process. Because PEC uses solar light as an abundant, free resource, it is an attractive technique for PDS generation compared to electrolysis. WO3, owing to its excellent stability in acidic environments, is an excellent metal oxide candidate for producing PDS. Withstanding stronger acidic pH as well as absorption of visible light as a major fraction of solar light renders WO3 a promising material for PEC-based PDS production when compared with other semiconductors. This mini review examines light-assisted, sustainable production of PDS on WO3 photoanodes. It mainly involves the oxidation of the anion bisulfate, HSO4−, in a highly acidic pH. The efficiency of photoelectrochemical generation of PDS is greatly influenced by important factors, including suppressing recombination of photoinduced charge carriers, cocatalyst loading, minimizing competing side reactions, and establishing coupled reactions. In this review, we briefly discussed the key highlights to date in the application of WO3 as a stable photoanode material for producing PDS. It provides insight into the potential of photocatalysis as an emerging route for the sustainable synthesis of PDS as a valuable chemical oxidant. Besides the significant progress made so far, the PDS production rate remains low, and minimizing the recombination tendency to achieve a higher photocurrent density could further boost PEC-based PDS production. Full article
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