Recent Advances in Heterogeneous Photocatalysis for Lignin Valorisation
Abstract
1. Introduction
2. An Overview of Photocatalysis
2.1. Emergence of Lignin Valorisation via Photocatalysis
2.2. Photocatalytic Mechanism in Heterogeneous Systems
3. Heterogeneous Photocatalysts for Lignin Valorization
3.1. Metal Oxide Semiconductors
3.2. Titanium Dioxide
- (i)
- its wide bandgap restricts absorption to UV light (~5% of the solar spectrum),
- (ii)
- rapid electron–hole recombination reduces quantum efficiency, and
- (iii)
- catalyst recovery and recyclability remain challenging in slurry systems. To address these limitations, extensive efforts have focused on TiO2 modification through metal doping, non-metal doping, and surface/interface engineering.
3.2.1. Metal-Modified TiO2
3.2.2. Non-Metal-Doped and Carbon-Modified TiO2
3.3. Other Metal Oxides: ZnO
3.4. Metal Sulfides
3.4.1. Cadmium Sulfide
CdS-Based Photocatalysts for Lignin Model Compounds and Native Lignin
3.4.2. Electronic and Interfacial Engineering of CdS Photocatalysts
3.5. Zinc Indium Sulfide (ZnIn2S4): A Ternary Metal Sulfide Photocatalyst
3.6. Carbon Based Materials as Metal Free Photocatalysts
3.6.1. Classification and General Properties of Carbon Based Photocatalysts
3.6.2. Graphitic Carbon Nitride (g-C3N4): Structure, Properties, and Photocatalytic Potential
Synthesis of g-C3N4
g-C3N4 in Lignin Photocatalytic Valorization
3.7. Structural Engineering Strategies and Mechanistic Insights
4. Strategic Outlook for Photocatalytic Lignin Valorization
4.1. Optimization of Lignin Solubility
- (a)
- Possess a high solubilization capacity for the various lignin fractions;
- (b)
- Not act as an optical filter or as a scavenger of photogenerated charge carriers;
- (c)
- Exhibit total chemical inertness to prevent corrosion of the reactor walls;
- (d)
- Be economical, bio-based/non-toxic, and easily recyclable.
4.2. Suitability of the Photocatalyst
4.3. Reaction Systems
4.4. Kinetic and Reaction Engineering Considerations for Scale-Up
4.5. Design Rules for Next-Generation Photocatalysts
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| BDE | Bond Dissociation Energy |
| BMSs | Binary Metal Sulfides |
| CB | Conduction Band |
| CBM | Conduction Band Maximum |
| EDX | Energy Dispersive X-ray |
| HOMO | Highest Occupied Molecular Orbital |
| HRTEM | High-Resolution Transmission Electron Microscopy |
| MOS | Metal Oxides Semiconductors |
| PL | Photoluminescence Spectroscopy |
| PP-ol | 2-phenoxy-1-phenylethanol |
| PP-one | 2-phenoxy-1-phenyl-ethanone |
| QD | Quantum dot |
| ROS | Reactive Oxygen Species |
| SEM | Scanning Electron Microscopy |
| SHE | Standard Hydrogen Electrode |
| SET | Single Electron Transfer |
| TEM | Transmission Electron Microscope |
| TMSs | Ternary Metal Sulfides |
| UV–vis DRS | UV–Visible Diffuse Reflectance Spectroscopy |
| VB | Valence Band |
| VBM | Valence band maximum |
| XPS | X-ray Photoelectron Spectroscopy |
References
- Bongaarts, J. Human Population Growth and the Demographic Transition. Philos. Trans. R. Soc. B Biol. Sci. 2009, 364, 2985–2990. [Google Scholar] [CrossRef] [PubMed]
- De Wrachien, D.; Schultz, B.; Goli, M.B. Impacts of Population Growth and Climate Change on Food Production and Irrigation and Drainage Needs: A World-Wide View. Irrig. Drain. 2021, 70, 981–995. [Google Scholar] [CrossRef]
- U.S. Energy Information Administration (EIA). International Energy Outlook 2023. Available online: https://www.eia.gov/outlooks/ieo/ (accessed on 10 June 2026).
- Rezaei, S.; Hormaza Mejia, A.; Wu, Y.; Reed, J.; Brouwer, J. Global Warming Impacts of the Transition from Fossil Fuel Conversion and Infrastructure to Hydrogen. Appl. Energy 2025, 397, 126363. [Google Scholar] [CrossRef]
- Shaari, M.S.; Abidin, N.Z.; Ridzuan, A.R.; Meo, M.S. The Impacts of Rural Population Growth, Energy Use and Economic Growth on CO2 Emissions. Int. J. Energy Econ. Policy 2021, 11, 553–561. [Google Scholar] [CrossRef]
- Akhtar Usmani, R.; Dar, M.A.; Khan, A.A. Advanced Biofuels and Circular Economy; Palgrave Advances in Bioeconomy: Economics and Policies; Springer Nature: Cham, Switzerland, 2025; ISBN 978-3-031-86933-4. [Google Scholar]
- Antar, M.; Lyu, D.; Nazari, M.; Shah, A.; Zhou, X.; Smith, D.L. Biomass for a Sustainable Bioeconomy: An Overview of World Biomass Production and Utilization. Renew. Sustain. Energy Rev. 2021, 139, 110691. [Google Scholar] [CrossRef]
- Kastner, B. Exploring the Bioeconomy as Discourse: Identifying Archetypical Bioeconomy Discourses and the Emergence of a Transformative Bioeconomy. Ecol. Soc. 2026, 31, 40. [Google Scholar] [CrossRef]
- Searchinger, T.D.; Hamburg, S.P.; Melillo, J.; Chameides, W.; Havlik, P.; Kammen, D.M.; Likens, G.E.; Lubowski, R.N.; Obersteiner, M.; Oppenheimer, M.; et al. Fixing a Critical Climate Accounting Error. Science 2009, 326, 527–528. [Google Scholar] [CrossRef] [PubMed]
- Wang, S.; Dai, G.; Yang, H.; Luo, Z. Lignocellulosic Biomass Pyrolysis Mechanism: A State-of-the-Art Review. Prog. Energy Combust. Sci. 2017, 62, 33–86. [Google Scholar] [CrossRef]
- Sekar, R.; Shin, H.D.; DiChristina, T.J. Direct Conversion of Cellulose and Hemicellulose to Fermentable Sugars by a Microbially-Driven Fenton Reaction. Bioresour. Technol. 2016, 218, 1133–1139. [Google Scholar] [CrossRef] [PubMed]
- Xu, C.; Arancon, R.A.D.; Labidi, J.; Luque, R. Lignin Depolymerisation Strategies: Towards Valuable Chemicals and Fuels. Chem. Soc. Rev. 2014, 43, 7485–7500. [Google Scholar] [CrossRef] [PubMed]
- Vanholme, R.; Demedts, B.; Morreel, K.; Ralph, J.; Boerjan, W. Lignin Biosynthesis and Structure. Plant Physiol. 2010, 153, 895–905. [Google Scholar] [CrossRef] [PubMed]
- Moretti, C.; Corona, B.; Hoefnagels, R.; Vural-Gürsel, I.; Gosselink, R.; Junginger, M. Review of Life Cycle Assessments of Lignin and Derived Products: Lessons Learned. Sci. Total Environ. 2021, 770, 144656. [Google Scholar] [CrossRef] [PubMed]
- Nilza, N.; Salam, M.D. Recent Advances in Generation of Bioproducts from Lignin: A Comprehensive Review. Discov. Sustain. 2025, 6, 1083. [Google Scholar] [CrossRef]
- Adler, E. Lignin Chemistry-Past, Present and Future. Wood Sci. Technol. 1977, 11, 169–218. [Google Scholar] [CrossRef]
- Boerjan, W.; Ralph, J.; Baucher, M. Lignin Biosynthesis. Annu. Rev. Plant Biol. 2003, 54, 519–546. [Google Scholar] [CrossRef] [PubMed]
- Lu, Y.-C.; Lu, Y.; Fan, X. Structure and Characteristics of Lignin. In Lignin; Springer: Cham, Switzerland, 2020; pp. 17–75. ISBN 978-3-030-40663-9. [Google Scholar]
- Galkin, M.V.; Samec, J.S.M. Lignin Valorization through Catalytic Lignocellulose Fractionation: A Fundamental Platform for the Future Biorefinery. ChemSusChem 2016, 9, 1544–1558. [Google Scholar] [CrossRef] [PubMed]
- Parthasarathi, R.; Romero, R.A.; Redondo, A.; Gnanakaran, S. Theoretical Study of the Remarkably Diverse Linkages in Lignin. J. Phys. Chem. Lett. 2011, 2, 2660–2666. [Google Scholar] [CrossRef]
- Brienza, F.; Cannella, D.; Montesdeoca, D.; Cybulska, I.; Debecker, D.P. A Guide to Lignin Valorization in Biorefineries: Traditional, Recent, and Forthcoming Approaches to Convert Raw Lignocellulose into Valuable Materials and Chemicals. RSC Sustain. 2024, 2, 37–90. [Google Scholar] [CrossRef]
- Bajwa, D.S.; Pourhashem, G.; Ullah, A.H.; Bajwa, S.G. A Concise Review of Current Lignin Production, Applications, Products and Their Environmental Impact. Ind. Crops Prod. 2019, 139, 111526. [Google Scholar] [CrossRef]
- Zevallos Torres, L.A.; Lorenci Woiciechowski, A.; de Andrade Tanobe, V.O.; Karp, S.G.; Guimarães Lorenci, L.C.; Faulds, C.; Soccol, C.R. Lignin as a Potential Source of High-Added Value Compounds: A Review. J. Clean. Prod. 2020, 263, 121499. [Google Scholar] [CrossRef]
- Mandlekar, N.; Cayla, A.; Rault, F.; Giraud, S.; Salaün, F.; Malucelli, G.; Guan, J.-P. An Overview on the Use of Lignin and Its Derivatives in Fire Retardant Polymer Systems. In Lignin—Trends and Applications; InTech: London, UK, 2018; ISBN 978-953-51-3902-7. [Google Scholar]
- Taher, M.A.; Wang, X.; Faridul Hasan, K.M.; Miah, M.R.; Zhu, J.; Chen, J. Lignin Modification for Enhanced Performance of Polymer Composites. ACS Appl. Bio Mater. 2023, 6, 5169–5192. [Google Scholar] [CrossRef] [PubMed]
- Tribot, A.; Amer, G.; Abdou Alio, M.; de Baynast, H.; Delattre, C.; Pons, A.; Mathias, J.D.; Callois, J.M.; Vial, C.; Michaud, P.; et al. Wood-Lignin: Supply, Extraction Processes and Use as Bio-Based Material. Eur. Polym. J. 2019, 112, 228–240. [Google Scholar] [CrossRef]
- Okonkwo, C.E.; Hussain, S.Z.; Onyeaka, H.; Adeyanju, A.A.; Nwonuma, C.O.; Bashir, A.A.; Farooq, A.; Zhou, C.; Shittu, T.D. Lignin Polyphenol: From Biomass to Innovative Food Applications, and Influence on Gut Microflora. Ind. Crops Prod. 2023, 206, 117696. [Google Scholar] [CrossRef]
- Luo, Z.; Cao, D.; Jiang, P.; Chen, J.; Ji, T.; Lin, H.; Lu, X.; Mu, L.; Zhu, J. Recent Progress in Microwave-Assisted Lignin Conversion. Renew. Sustain. Energy Rev. 2025, 219, 115855. [Google Scholar] [CrossRef]
- Zhou, N.; Thilakarathna, W.P.D.W.; He, Q.S.; Rupasinghe, H.P.V. A Review: Depolymerization of Lignin to Generate High-Value Bio-Products: Opportunities, Challenges, and Prospects. Front. Energy Res. 2022, 9, 758744. [Google Scholar] [CrossRef]
- Zhang, Q.; Gupta, N.K.; Rose, M.; Gu, X.; Menezes, P.W.; Chen, Z. Mechanistic Insights into the Photocatalytic Valorization of Lignin Models via C−O/C−C Cleavage or C−C/C−N Coupling. Chem Catal. 2023, 3, 100470. [Google Scholar] [CrossRef]
- Ahmad, K.; Ghatak, H.R.; Ahuja, S.M. A Review on Photocatalytic Remediation of Environmental Pollutants and H2 Production through Water Splitting: A Sustainable Approach. Environ. Technol. Innov. 2020, 19, 100893. [Google Scholar] [CrossRef]
- Ballari, M.M.; Carballada, J.; Minen, R.I.; Salvadores, F.; Brouwers, H.J.H.; Alfano, O.M.; Cassano, A.E. Visible Light TiO2 Photocatalysts Assessment for Air Decontamination. Process Saf. Environ. Prot. 2016, 101, 124–133. [Google Scholar] [CrossRef]
- Prier, C.K.; Rankic, D.A.; MacMillan, D.W.C. Visible Light Photoredox Catalysis with Transition Metal Complexes: Applications in Organic Synthesis. Chem. Rev. 2013, 113, 5322–5363. [Google Scholar] [CrossRef] [PubMed]
- Colmenares, J.C.; Magdziarz, A. Room Temperature Versatile Conversion of Biomass-Derived Compounds by Means of Supported TiO2 Photocatalysts. J. Mol. Catal. A Chem. 2013, 366, 156–162. [Google Scholar] [CrossRef]
- Wu, X.; Fan, X.; Xie, S.; Lin, J.; Cheng, J.; Zhang, Q.; Chen, L.; Wang, Y. Solar Energy-Driven Lignin-First Approach to Full Utilization of Lignocellulosic Biomass under Mild Conditions. Nat. Catal. 2018, 1, 772–780. [Google Scholar] [CrossRef]
- Liu, T.; Huang, J.; Li, J.; Wang, K.; Guo, Z.; Wu, H.; Yang, S.; Li, H. Heterogeneous Photocatalysis for Biomass Valorization to Organic Acids. Green Chem. 2023, 25, 10338–10365. [Google Scholar] [CrossRef]
- Guo, H.; Luo, X.; Wang, L.; Yang, C.; Li, S.; Liu, S.; Li, J.; Chen, Z. Lignin-Assisted Photoreactions: Unveiling New Frontiers in Light-Induced Chemistry. ChemSusChem 2025, 18, e202402117. [Google Scholar] [CrossRef]
- Salaices, M.; Serrano, B.; De Lasa, H.I. Experimental Evaluation of Photon Absorption in an Aqueous TiO2 Slurry Reactor. Chem. Eng. J. 2002, 90, 219–229. [Google Scholar] [CrossRef]
- Ghalta, R.; Srivastava, R. Advancing Sustainable Lignin Valorisation: Utilizing Z-Scheme Photocatalysts for Efficient Hydrogenolysis of Lignin’s β-O-4, α-O-4, and 4-O-5 Linkages under Ambient Conditions. Green Chem. 2024, 26, 7384–7405. [Google Scholar] [CrossRef]
- Zhang, C.; Shen, X.; Jin, Y.; Cheng, J.; Cai, C.; Wang, F. Catalytic Strategies and Mechanism Analysis Orbiting the Center of Critical Intermediates in Lignin Depolymerization. Chem. Rev. 2023, 123, 4510–4601. [Google Scholar] [CrossRef] [PubMed]
- Ciamician, G. The Photochemistsy of the Future. Science 1912, 36, 385–394. [Google Scholar] [CrossRef] [PubMed]
- Venturi, M.; Balzani, V.; Gandolfi, T. Fuels from Solar Energy. A Dream of Giacomo Ciamician, the Father of Photochemistry. 2005. Available online: https://acrobat.uservoice.com/forums/931921-adobe-acrobat-in-browsers/suggestions/47670005-chrome-extension-efaidnbmnnnibpcajpcglclefindmka (accessed on 10 June 2026).
- Albini, A.; Fagnoni, M. 1908: Giacomo Ciamician and the Concept of Green Chemistry. ChemSusChem 2008, 1, 63–66. [Google Scholar] [CrossRef]
- Kümmell, G. Photochemie. Leipzig: B.G. Teubner. Catalog Record: Photochemie|HathiTrust Digital Library. 1908. Available online: https://catalog.hathitrust.org/Record/012241985 (accessed on 10 June 2026).
- Eibner, A. Action of Light on Pigments. Chemiker-Zeitung 1911, 35, 753–755. [Google Scholar]
- Bruner, L.; Kozak, J. Zur Kenntnis Der Photokatalyse. I. Die Lichtreaktion in Gemischen: Uransalz + Oxalsäure. Z. Elektrochem. Angew. Phys. Chem. 1911, 17, 354–360. [Google Scholar] [CrossRef]
- Baly, E.C.C.; Heilbron, I.M.; Barker, W.F. CX.—Photocatalysis. Part I. The Synthesis of Formaldehyde and Carbohydrates from Carbon Dioxide and Water. J. Chem. Soc. Trans. 1921, 119, 1025–1035. [Google Scholar] [CrossRef]
- Baur, E.; Perret, A. Über Die Einwirkung von Licht Auf Gelöste Silbersalze in Gegenwart von Zinkoxyd. Helv. Chim. Acta 1924, 7, 910–915. [Google Scholar] [CrossRef]
- Sajama, S.; Kamppinen, M. A Historical Introduction to Phenomenology; Routledge: Oxford, UK, 2013; Volume 71, ISBN 9781134478897. [Google Scholar]
- Fujishima, A.; Honda, K. Electrochemical Photolysis of Water at a Semiconductor Electrode. Nature 1972, 238, 37–38. [Google Scholar] [CrossRef]
- Braslavsky, S.E.; Braun, A.M.; Cassano, A.E.; Emeline, A.V.; Litter, M.I.; Palmisano, L.; Parmon, V.N.; Serpone, N. Glossary of Terms Used in Photocatalysis and Radiation Catalysis (IUPAC Recommendations 2011). Pure Appl. Chem. 2011, 83, 931–1014. [Google Scholar] [CrossRef]
- Sordello, F.; Calza, P.; Minero, C.; Malato, S.; Minella, M. More than One Century of History for Photocatalysis, from Past, Present and Future Perspectives. Catalysts 2022, 12, 1572. [Google Scholar] [CrossRef]
- Low, J.; Zhang, C.; Ma, J.; Murzin, D.Y.; Xiong, Y. Heterogeneous Photocatalysis: What Is Being Overlooked? Trends Chem. 2023, 5, 121–132. [Google Scholar] [CrossRef]
- Guillard, C.; Robert, D. Fifty Years of Research in Environmental Photocatalysis: Scientific Advances, Discoveries, and New Perspectives. Catalysts 2024, 14, 547. [Google Scholar] [CrossRef]
- Chen, H.; Wan, K.; Zheng, F.; Zhang, Z.; Zhang, Y.; Long, D. Mechanism Insight into Photocatalytic Conversion of Lignin for Valuable Chemicals and Fuels Production: A State-of-the-Art Review. Renew. Sustain. Energy Rev. 2021, 147, 111217. [Google Scholar] [CrossRef]
- Pan, Z.-Z.; Li, Y.; Zhao, Y.; Zhang, C.; Chen, H. Bulk Phase Charge Transfer in Focus—And in Sequential along with Surface Steps. Catal. Today 2021, 364, 2–6. [Google Scholar] [CrossRef]
- Yusuf, M.; Rosha, P.; Qureshi, F.; Ali, F.M.; Ibrahim, H. Recent Avenues in the Photocatalytic Splitting of Water for Eco-Friendly Hydrogen Production. Sustain. Mater. Technol. 2025, 43, e01332. [Google Scholar] [CrossRef]
- Huang, S.; Yang, X.; Zhou, L.; Lei, J.; Wang, L.; Liu, Y.; Zhang, J. Photocatalytic Production of H2O2 and Its In-Situ Environmental Applications. Res. Chem. Intermed. 2024, 50, 2917–2969. [Google Scholar] [CrossRef]
- de Macedo, O.B.; de Oliveira, A.L.M.; dos Santos, I.M.G. Zinc Tungstate: A Review on Its Application as Heterogeneous Photocatalyst. Cerâmica 2022, 68, 294–315. [Google Scholar] [CrossRef]
- Tachikawa, T.; Majima, T. Single-Molecule, Single-Particle Fluorescence Imaging of TiO2-Based Photocatalytic Reactions. Chem. Soc. Rev. 2010, 39, 4802. [Google Scholar] [CrossRef] [PubMed]
- Zhang, Z.; Wang, W.; Wang, L.; Sun, S. Enhancement of Visible-Light Photocatalysis by Coupling with Narrow-Band-Gap Semiconductor: A Case Study on Bi2S3/Bi2WO6. ACS Appl. Mater. Interfaces 2012, 4, 593–597. [Google Scholar] [CrossRef] [PubMed]
- Nosaka, Y.; Nosaka, A.Y. Generation and Detection of Reactive Oxygen Species in Photocatalysis. Chem. Rev. 2017, 117, 11302–11336. [Google Scholar] [CrossRef] [PubMed]
- Linsebigler, A.L.; Lu, G.; Yates, J.T. Photocatalysis on TiO2 Surfaces: Principles, Mechanisms, and Selected Results. Chem. Rev. 1995, 95, 735–758. [Google Scholar] [CrossRef]
- Habisreutinger, S.N.; Schmidt-Mende, L.; Stolarczyk, J.K. Photocatalytic Reduction of CO2 on TiO2 and Other Semiconductors. Angew. Chem. Int. Ed. 2013, 52, 7372–7408. [Google Scholar] [CrossRef] [PubMed]
- Aboagye, D.; Djellabi, R.; Medina, F.; Contreras, S. Radical-Mediated Photocatalysis for Lignocellulosic Biomass Conversion into Value-Added Chemicals and Hydrogen: Facts, Opportunities and Challenges. Angew. Chem. 2023, 135, e202301909. [Google Scholar] [CrossRef]
- Tang, J.; Durrant, J.R.; Klug, D.R. Mechanism of Photocatalytic Water Splitting in TiO2. Reaction of Water with Photoholes, Importance of Charge Carrier Dynamics, and Evidence for Four-Hole Chemistry. J. Am. Chem. Soc. 2008, 130, 13885–13891. [Google Scholar] [CrossRef] [PubMed]
- Hisatomi, T.; Kubota, J.; Domen, K. Recent Advances in Semiconductors for Photocatalytic and Photoelectrochemical Water Splitting. Chem. Soc. Rev. 2014, 43, 7520–7535. [Google Scholar] [CrossRef] [PubMed]
- Mohamadpour, F.; Amani, A.M. Photocatalytic Systems: Reactions, Mechanism, and Applications. RSC Adv. 2024, 14, 20609–20645. [Google Scholar] [CrossRef] [PubMed]
- Wang, Z.; Xiao, M.; You, J.; Liu, G.; Wang, L. Defect Engineering in Photocatalysts and Photoelectrodes: From Small to Big. Acc. Mater. Res. 2022, 3, 1127–1136. [Google Scholar] [CrossRef]
- Chen, X.; Li, C.; Grätzel, M.; Kostecki, R.; Mao, S.S. Nanomaterials for Renewable Energy Production and Storage. Chem. Soc. Rev. 2012, 41, 7909. [Google Scholar] [CrossRef] [PubMed]
- Liu, X.; Jiang, Z.; Cao, X.; Shen, Z.; Zhao, W.; Wang, F.; Cui, M.; Liang, C. Z-Scheme Heterojunction g-C3N4/CQD/CdZnS with High Redox Capability for Enhancing Visible Light-Driven Photocatalytic Depolymerization of Lignin into Aromatic Monomers. Green Chem. 2024, 26, 1935–1948. [Google Scholar] [CrossRef]
- Liu, X.; Jiang, Z.; Cao, X.; Shen, Z.; Zhao, W.; Wang, F.; Cui, M.; Liang, C. Fabrication of S-Scheme g-C3N4/Zn4In2S7 Heterojunction Photocatalyst for Enhancing Selective Cleavage of β-O-4 Bond in Lignin Model Compounds and Lignin. ACS Sustain. Chem. Eng. 2023, 11, 14947–14959. [Google Scholar] [CrossRef]
- Ishchenko, O.; Rogé, V.; Lamblin, G.; Lenoble, D.; Fechete, I. TiO2, ZnO, and SnO2-Based Metal Oxides for Photocatalytic Applications: Principles and Development. Comptes Rendus Chim. 2021, 24, 103–124. [Google Scholar] [CrossRef]
- Pelizzetti, E.; Minero, C. Metal Oxides as Photocatalysts for Environmental Detoxification. Comments Inorg. Chem. 1994, 15, 297–337. [Google Scholar] [CrossRef]
- Hoffmann, M.R.; Martin, S.T.; Choi, W.; Bahnemann, D.W. Environmental Applications of Semiconductor Photocatalysis. Chem. Rev. 1995, 95, 69–96. [Google Scholar] [CrossRef]
- Ravelli, D.; Dondi, D.; Fagnoni, M.; Albini, A. Photocatalysis. A Multi-Faceted Concept for Green Chemistry. Chem. Soc. Rev. 2009, 38, 1999. [Google Scholar] [CrossRef] [PubMed]
- Khan, M.M.; Adil, S.F.; Al-Mayouf, A. Metal Oxides as Photocatalysts. J. Saudi Chem. Soc. 2015, 19, 462–464. [Google Scholar] [CrossRef]
- Strunk, J. Heterogeneous Photocatalysis; Wiley: Hoboken, NJ, USA, 2021; ISBN 9783527344642. [Google Scholar]
- Riente, P.; Noël, T. Application of Metal Oxide Semiconductors in Light-Driven Organic Transformations. Catal. Sci. Technol. 2019, 9, 5186–5232. [Google Scholar] [CrossRef]
- Yang, Y.; Niu, S.; Han, D.; Liu, T.; Wang, G.; Li, Y. Progress in Developing Metal Oxide Nanomaterials for Photoelectrochemical Water Splitting. Adv. Energy Mater. 2017, 7, 1700555. [Google Scholar] [CrossRef]
- Mamaghani, A.H.; Haghighat, F.; Lee, C.-S. Photocatalytic Oxidation Technology for Indoor Environment Air Purification: The State-of-the-Art. Appl. Catal. B Environ. 2017, 203, 247–269. [Google Scholar] [CrossRef]
- Sultana, S.; Syrek, K.; Sulka, G.D. Revolutionizing Lignin Photovalorization: Recent Advances in TiO2-Based Materials and beyond in Pursuit of Optimal Solutions for a Sustainable Future. Sustain. Energy Fuels 2024, 8, 2383–2422. [Google Scholar] [CrossRef]
- Yamakata, A.; Vequizo, J.J.M. Curious Behaviors of Photogenerated Electrons and Holes at the Defects on Anatase, Rutile, and Brookite TiO2 Powders: A Review. J. Photochem. Photobiol. C Photochem. Rev. 2019, 40, 234–243. [Google Scholar] [CrossRef]
- Etacheri, V.; Di Valentin, C.; Schneider, J.; Bahnemann, D.; Pillai, S.C. Visible-Light Activation of TiO2 Photocatalysts: Advances in Theory and Experiments. J. Photochem. Photobiol. C Photochem. Rev. 2015, 25, 1–29. [Google Scholar] [CrossRef]
- Coward, L.T.; Chu, T.T.M.; Li, X.; Lyu, P.; Love, O. Surface or Bulk? Mechanistic Insights into Ni2+-Doped Brookite TiO2 Photocatalysts. ACS Nanosci. Au 2025, 5, 324–336. [Google Scholar] [CrossRef] [PubMed]
- Kobayakawa, K.; Sato, Y.; Nakamura, S.; Fujishima, A. Photodecomposition of Kraft Lignin Catalyzed by Titanium Dioxide. Bull. Chem. Soc. Jpn. 1989, 62, 3433–3436. [Google Scholar] [CrossRef]
- Ksibi, M. Photodegradation of Lignin from Black Liquor Using a UV/TiO2 System. J. Photochem. Photobiol. A Chem. 2003, 154, 211–218. [Google Scholar] [CrossRef]
- Chen, C.; Liu, P.; Xia, H.; Zhou, M.; Zhao, J.; Sharma, B.K.; Jiang, J. Photocatalytic Cleavage of β-O-4 Ether Bonds in Lignin over Ni/TiO2. Molecules 2020, 25, 2109. [Google Scholar] [CrossRef] [PubMed]
- Prado, R.; Erdocia, X.; Labidi, J. Effect of the Photocatalytic Activity of TiO2 on Lignin Depolymerization. Chemosphere 2013, 91, 1355–1361. [Google Scholar] [CrossRef] [PubMed]
- Hongdilokkul, P.; Chuangchote, S.; Laosiripojana, N.; Sagawa, T. Conversion of Lignin via Photocatalysis Using Synthesized Ag-TiO2 Photocatalysts Sintered under Different Atmospheres. J. Sustain. Energy Environ. 2017, 8, 101–105. [Google Scholar]
- Gong, J.; Imbault, A.; Farnood, R. The Promoting Role of Bismuth for the Enhanced Photocatalytic Oxidation of Lignin on Pt-TiO2 Under Solar Light Illumination. Appl. Catal. B Environ. 2017, 204, 296–303. [Google Scholar] [CrossRef]
- Piątkowska, A.; Janus, M.; Szymański, K.; Mozia, S. C-,N- and S-Doped TiO2 Photocatalysts: A Review. Catalysts 2021, 11, 144. [Google Scholar] [CrossRef]
- Rangel, R.; Cedeño, V.J.; Espino, J.; Bartolo-Pérez, P.; Rodríguez-Gattorno, G.; Alvarado-Gil, J.J. Comparing the Efficiency of N-Doped TiO2 and N-Doped Bi2MoO6 Photo Catalysts for MB and Lignin Photodegradation. Catalysts 2018, 8, 668. [Google Scholar] [CrossRef]
- Srisasiwimon, N.; Chuangchote, S.; Laosiripojana, N.; Sagawa, T. TiO2/Lignin-Based Carbon Composited Photocatalysts for Enhanced Photocatalytic Conversion of Lignin to High Value Chemicals. ACS Sustain. Chem. Eng. 2018, 6, 13968–13976. [Google Scholar] [CrossRef]
- Ma, Y.-S.; Chang, C.-N.; Chiang, Y.-P.; Sung, H.-F.; Chao, A.C. Photocatalytic Degradation of Lignin Using Pt/TiO2 as the Catalyst. Chemosphere 2008, 71, 998–1004. [Google Scholar] [CrossRef] [PubMed]
- Fan, H.; Li, H.; Liu, Z.; Yang, F.; Li, G. Production of Fine Chemicals by Integrated Photocatalytical Degradation of Alkali Lignin Solution in Corrugated Plate Reactor and Cyclic Extraction Technology. Ind. Crops Prod. 2015, 74, 497–504. [Google Scholar] [CrossRef]
- Xiao, X.; Han, Y.; Liu, C.; Li, Y.; Sun, G.; Wang, X. Visible-Light-Activated TiO2 Photocatalysis Regionally Modified by SiO2 for Lignin Depolymerization. Mater. Today Energy 2022, 30, 101190. [Google Scholar] [CrossRef]
- Xiao, X.; Han, Y.; Liu, C.; Wang, X. β-O-4 Linkage Breakage of Lignin Enabled by TiO2 with off/on Switchable Defect Sites for Photocatalysis. J. Solid State Chem. 2023, 319, 123810. [Google Scholar] [CrossRef]
- Ong, C.B.; Ng, L.Y.; Mohammad, A.W. A Review of ZnO Nanoparticles as Solar Photocatalysts: Synthesis, Mechanisms and Applications. Renew. Sustain. Energy Rev. 2018, 81, 536–551. [Google Scholar] [CrossRef]
- Kansal, S.K.; Singh, M.; Sud, D. Studies on TiO2/ZnO Photocatalysed Degradation of Lignin. J. Hazard. Mater. 2008, 153, 412–417. [Google Scholar] [CrossRef] [PubMed]
- Lee, K.M.; Lai, C.W.; Ngai, K.S.; Juan, J.C. Recent Developments of Zinc Oxide Based Photocatalyst in Water Treatment Technology: A Review. Water Res. 2016, 88, 428–448. [Google Scholar] [CrossRef] [PubMed]
- Ramos-Corona, A.; Rangel, R.; Alvarado-Gil, J.J.; Adem, E. Photocatalytic Performance of ZnO/N-RGO For Lignin Degradation Under Vis Light Energy. MRS Adv. 2019, 4, 3407–3415. [Google Scholar] [CrossRef]
- Yaqoob, A.A.; Noor, N.H.b.M.; Umar, K.; Adnan, R.; Ibrahim, M.N.M.; Rashid, M. Graphene Oxide–ZnO Nanocomposite: An Efficient Visible Light Photocatalyst for Degradation of Rhodamine B. Appl. Nanosci. 2021, 11, 1291–1302. [Google Scholar] [CrossRef]
- Sandhu, Z.A.; Raza, M.A.; Farwa, U.; Nasr, S.; Yahia, I.S.; Fatima, S.; Munawar, M.; Hadayet, Y.; Ashraf, S.; Ashraf, H. Response Surface Methodology: A Powerful Tool for Optimizing the Synthesis of Metal Sulfide Nanoparticles for Dye Degradation. Mater. Adv. 2023, 4, 5094–5125. [Google Scholar] [CrossRef]
- Wang, F.; Huang, F.; Yu, F.; Kang, X.; Wang, Q.; Liu, Y. Metal-Sulfide Photocatalysts for Solar-Fuel Generation across the Solar Spectrum. Cell Rep. Phys. Sci. 2023, 4, 101450. [Google Scholar] [CrossRef]
- Wu, Z.; Xiong, Z.; Lai, B. Metal Sulfide-Based Catalysts in Advanced Oxidation Processes for Water Decontamination. Environ. Funct. Mater. 2022, 1, 298–315. [Google Scholar] [CrossRef]
- Nasir, J.A.; Rehman, Z.U.; Shah, S.N.A.; Khan, A.; Butler, I.S.; Catlow, C.R.A. Recent Developments and Perspectives in CdS-Based Photocatalysts for Water Splitting. J. Mater. Chem. A 2020, 8, 20752–20780. [Google Scholar] [CrossRef]
- Wang, J.; Lin, S.; Tian, N.; Ma, T.; Zhang, Y.; Huang, H. Nanostructured Metal Sulfides: Classification, Modification Strategy, and Solar-Driven CO2 Reduction Application. Adv. Funct. Mater. 2021, 31, 2008008. [Google Scholar] [CrossRef]
- Zhang, S.; Ou, X.; Xiang, Q.; Carabineiro, S.A.C.; Fan, J.; Lv, K. Research Progress in Metal Sulfides for Photocatalysis: From Activity to Stability. Chemosphere 2022, 303, 135085. [Google Scholar] [CrossRef] [PubMed]
- Liu, X.; Sayed, M.; Bie, C.; Cheng, B.; Hu, B.; Yu, J.; Zhang, L. Hollow CdS-Based Photocatalysts. J. Mater. 2021, 7, 419–439. [Google Scholar] [CrossRef]
- Jie, L.; Gao, X.; Cao, X.; Wu, S.; Long, X.; Ma, Q.; Su, J. A Review of CdS Photocatalytic Nanomaterials: Morphology, Synthesis Methods, and Applications. Mater. Sci. Semicond. Process. 2024, 176, 108288. [Google Scholar] [CrossRef]
- Zhai, T.; Fang, X.; Li, L.; Bando, Y.; Golberg, D. One-Dimensional CdS Nanostructures: Synthesis, Properties, and Applications. Nanoscale 2010, 2, 168–187. [Google Scholar] [CrossRef] [PubMed]
- Wu, X.; Xie, S.; Liu, C.; Zhou, C.; Lin, J.; Kang, J.; Zhang, Q.; Wang, Z.; Wang, Y. Ligand-Controlled Photocatalysis of CdS Quantum Dots for Lignin Valorization under Visible Light. ACS Catal. 2019, 9, 8443–8451. [Google Scholar] [CrossRef]
- Yoo, H.; Lee, M.-W.; Lee, S.; Lee, J.; Cho, S.; Lee, H.; Cha, H.G.; Kim, H.S. Enhancing Photocatalytic β-O-4 Bond Cleavage in Lignin Model Compounds by Silver-Exchanged Cadmium Sulfide. ACS Catal. 2020, 10, 8465–8475. [Google Scholar] [CrossRef]
- Han, G.; Yan, T.; Zhang, W.; Zhang, Y.C.; Lee, D.Y.; Cao, Z.; Sun, Y. Highly Selective Photocatalytic Valorization of Lignin Model Compounds Using Ultrathin Metal/CdS. ACS Catal. 2019, 9, 11341–11349. [Google Scholar] [CrossRef]
- Xu, J.; Lin, F.; Wang, J.; Wang, Y. Photocatalyst CdS for Efficient Cleavage of Lignin C O Bonds in Micellar Aqueous Medium. Chem. Phys. Lett. 2022, 805, 139981. [Google Scholar] [CrossRef]
- Liu, M.; Wang, N.; Cheng, M.; Zhu, F.; Qin, Y.; Zhou, J.; Guan, J.; Ge, Y.; Zhu, H.; Chen, W.; et al. Promotion of Photocatalytic Lignin Models C β –O Bond Cleavage by Cr-Doped Zinc Indium Sulfide in Alkaline Solvent. J. Phys. Chem. C 2023, 127, 11997–12007. [Google Scholar] [CrossRef]
- Luo, N.; Wang, M.; Li, H.; Zhang, J.; Hou, T.; Chen, H.; Zhang, X.; Lu, J.; Wang, F. Visible-Light-Driven Self-Hydrogen Transfer Hydrogenolysis of Lignin Models and Extracts into Phenolic Products. ACS Catal. 2017, 7, 4571–4580. [Google Scholar] [CrossRef]
- Yan, Y.; Chen, Z.; Cheng, X.; Shi, W. Research Progress of ZnIn2S4-Based Catalysts for Photocatalytic Overall Water Splitting. Catalysts 2023, 13, 967. [Google Scholar] [CrossRef]
- Lin, J.; Wu, X.; Xie, S.; Chen, L.; Zhang, Q.; Deng, W.; Wang, Y. Visible-Light-Driven Cleavage of C−O Linkage for Lignin Valorization to Functionalized Aromatics. ChemSusChem 2019, 12, 5023–5031. [Google Scholar] [CrossRef] [PubMed]
- Shao, S.; Wang, K.; Love, J.B.; Yu, J.; Du, S.; Yue, Z.; Fan, X. Water Promoted Photocatalytic Cβ-O Bonds Hydrogenolysis in Lignin Model Compounds and Lignin Biomass Conversion to Aromatic Monomers. Chem. Eng. J. 2022, 435, 134980. [Google Scholar] [CrossRef]
- Zhang, J.; Sun, J.; Suo, C.; Li, W.; Luo, S.; Tian, B.; Ma, C.; Liu, S. Sulfur Vacancy Induced Radical Generation in ZnIn2S4 for Lignin Photocatalytic Cα–Cβ Cleavage. Sustain. Energy Fuels 2024, 8, 4496–4506. [Google Scholar] [CrossRef]
- DebRoy, T.; Elmer, J.W. Metals beyond Tomorrow: Balancing Supply, Demand, Sustainability, Substitution, and Innovations. Mater. Today 2024, 80, 737–757. [Google Scholar] [CrossRef]
- Ge, J.; Zhang, Y.; Park, S.-J. Recent Advances in Carbonaceous Photocatalysts with Enhanced Photocatalytic Performances: A Mini Review. Materials 2019, 12, 1916. [Google Scholar] [CrossRef] [PubMed]
- Giannakoudakis, D.A.; Zormpa, F.F.; Margellou, A.G.; Qayyum, A.; Colmenares-Quintero, R.F.; Len, C.; Colmenares, J.C.; Triantafyllidis, K.S. Carbon-Based Nanocatalysts (CnCs) for Biomass Valorization and Hazardous Organics Remediation. Nanomaterials 2022, 12, 1679. [Google Scholar] [CrossRef] [PubMed]
- Yi, H.; Huang, D.; Qin, L.; Zeng, G.; Lai, C.; Cheng, M.; Ye, S.; Song, B.; Ren, X.; Guo, X. Selective Prepared Carbon Nanomaterials for Advanced Photocatalytic Application in Environmental Pollutant Treatment and Hydrogen Production. Appl. Catal. B Environ. 2018, 239, 408–424. [Google Scholar] [CrossRef]
- Mohapatra, L.; Cheon, D.; Yoo, S.H. Carbon-Based Nanomaterials for Catalytic Wastewater Treatment: A Review. Molecules 2023, 28, 1805. [Google Scholar] [CrossRef] [PubMed]
- Şak, B.; Sousa, H.B.A.; Prior, J.A. V Carbon Nanomaterial-Based Electrochemical Biosensors for Alzheimer’s Disease Biomarkers: Progress, Challenges, and Future Perspectives. Biosensors 2025, 15, 684. [Google Scholar] [CrossRef] [PubMed]
- Wang, Q.; Fang, Z.; Zhang, W.; Zhang, D. High-Efficiency g-C3N4 Based Photocatalysts for CO2 Reduction: Modification Methods. Adv. Fiber Mater. 2022, 4, 342–360. [Google Scholar] [CrossRef]
- Wang, X.; Maeda, K.; Thomas, A.; Takanabe, K.; Xin, G.; Carlsson, J.M.; Domen, K.; Antonietti, M. A Metal-Free Polymeric Photocatalyst for Hydrogen Production from Water under Visible Light. In Materials for Sustainable Energy; Co-Published with Macmillan Publishers Ltd.: London, UK, 2010; pp. 271–275. ISBN 9789814317665. [Google Scholar]
- Vaya, D.; Kaushik, B.; Surolia, P.K. Recent Advances in Graphitic Carbon Nitride Semiconductor: Structure, Synthesis and Applications. Mater. Sci. Semicond. Process. 2022, 137, 106181. [Google Scholar] [CrossRef]
- Zhang, W.; Xu, D.; Wang, F.; Chen, M. Element-Doped Graphitic Carbon Nitride: Confirmation of Doped Elements and Applications. Nanoscale Adv. 2021, 3, 4370–4387. [Google Scholar] [CrossRef] [PubMed]
- Wang, L.; Wang, K.; He, T.; Zhao, Y.; Song, H.; Wang, H. Graphitic Carbon Nitride-Based Photocatalytic Materials: Preparation Strategy and Application. ACS Sustain. Chem. Eng. 2020, 8, 16048–16085. [Google Scholar] [CrossRef]
- Saman, F.; Se Ling, C.H.; Ayub, A.; Rafeny, N.H.B.; Mahadi, A.H.; Subagyo, R.; Nugraha, R.E.; Prasetyoko, D.; Bahruji, H. Review on Synthesis and Modification of g-C3N4 for Photocatalytic H2 Production. Int. J. Hydrogen Energy 2024, 77, 1090–1116. [Google Scholar] [CrossRef]
- Kumar, N.; Kumari, M.; Ismael, M.; Tahir, M.; Sharma, R.K.; Kumari, K.; Koduru, J.R.; Singh, P. Graphitic Carbon Nitride (g–C3N4)–Assisted Materials for the Detection and Remediation of Hazardous Gases and VOCs. Environ. Res. 2023, 231, 116149. [Google Scholar] [CrossRef] [PubMed]
- Wang, A.; Wang, C.; Fu, L.; Wong-Ng, W.; Lan, Y. Recent Advances of Graphitic Carbon Nitride-Based Structures and Applications in Catalyst, Sensing, Imaging, and LEDs. Nano-Micro Lett. 2017, 9, 47. [Google Scholar] [CrossRef] [PubMed]
- Xie, L.; Wang, X.; Zhang, Z.; Ma, Y.; Du, T.; Wang, R.; Wang, J. Photosynthesis of Hydrogen Peroxide Based on g-C3N4: The Road of a Cost-Effective Clean Fuel Production. Small 2023, 19, 2301007. [Google Scholar] [CrossRef] [PubMed]
- Li, Y.; Li, X.; Zhang, H.; Fan, J.; Xiang, Q. Design and Application of Active Sites in g-C3N4-Based Photocatalysts. J. Mater. Sci. Technol. 2020, 56, 69–88. [Google Scholar] [CrossRef]
- Liu, H.; Li, H.; Lu, J.; Zeng, S.; Wang, M.; Luo, N.; Xu, S.; Wang, F. Photocatalytic Cleavage of C–C Bond in Lignin Models under Visible Light on Mesoporous Graphitic Carbon Nitride through π–π Stacking Interaction. ACS Catal. 2018, 8, 4761–4771. [Google Scholar] [CrossRef]
- Ku, C.; Li, K.; Guo, H.; Wu, Q.; Yan, L. One-Step Construction of Mesoporous Cyano and Sulfur Co-Modified Carbon Nitride for Photocatalytic Valorization of Lignin to Functionalized Aromatics. Appl. Surf. Sci. 2022, 592, 153266. [Google Scholar] [CrossRef]
- Cao, M.; Shao, S.; Wei, W.; Love, J.B.; Yue, Z.; Zhang, Y.; Zhang, X.; Xue, Y.; Yu, J.; Fan, X. Engineering Multiple Defect Sites on Ultrathin Graphitic Carbon Nitride for Efficiently Photocatalytic Conversion of Lignin into Monomeric Aromatics via Selective C–C Bond Scission. Appl. Surf. Sci. 2024, 643, 158653. [Google Scholar] [CrossRef]
- Li, X.; Wu, T.; Fang, G.; Tian, Q.; Yang, Q. Metal-Free Oxidized Carbon Nitride for Efficient Sunlight-Driven Photocleavage of Lignin β-O-4 Bond. Appl. Surf. Sci. 2023, 617, 156598. [Google Scholar] [CrossRef]
- Xu, J.; Shi, J.; Wang, J.; Zhang, L.; Wang, Y. Photocatalyst g-C3N4 for Efficient Cleavage of Lignin CC Bonds in Micellar Aqueous Medium. Mol. Catal. 2022, 530, 112598. [Google Scholar] [CrossRef]
- Luo, Y.; Zhu, Y.; Han, Y.; Ye, H.; Liu, R.; Lan, Y.; Xue, M.; Xie, X.; Yu, S.; Zhang, L.; et al. g-C3N4-Based Photocatalysts for Organic Pollutant Removal: A Critical Review. Carbon Res. 2023, 2, 14. [Google Scholar] [CrossRef]
- Zhao, X.; You, C.; Li, X.; Zhang, Y.; Wang, F. The Depolymerization of Lignin in Water/Acetone/Formic Acid Synergistic Solvents to Produce High-Value Added Phenolic Monomers without External Hydrogen and Catalyst. Fuel Process. Technol. 2024, 261, 108102. [Google Scholar] [CrossRef]
- Skillen, N.; Daly, H.; Lan, L.; Aljohani, M.; Murnaghan, C.W.J.; Fan, X.; Hardacre, C.; Sheldrake, G.N.; Robertson, P.K.J. Photocatalytic Reforming of Biomass: What Role Will the Technology Play in Future Energy Systems. Top. Curr. Chem. 2022, 380, 33. [Google Scholar] [CrossRef] [PubMed]
- Peeters, W.; Neerup, R.; Fosbøl, P.L. Solvent Degradation & Influences on Amine-Based Carbon Capture Operations. Int. J. Greenh. Gas Control 2025, 147, 104500. [Google Scholar] [CrossRef]
- Omar, M.; Omar, S.; Sopian, K.; Iskandar Mohamad, T. Photoreforming of Organic Waste into Hydrogen: Catalyst Design, Feedstock Valorization, and Future Perspectives. Energy Eng. 2026, 123, 3. [Google Scholar] [CrossRef]
- Zhang, H.; Liu, Y.; Liu, N.; Kang, S. Understanding the Interface Properties of Photocatalytic Reactors for Rational Engineering Applications. Chem. Eng. J. 2023, 472, 145057. [Google Scholar] [CrossRef]
- Tang, M.; Shen, J.; Liu, Z. Well-Defined Heterocatalysts for Plastic Upcycling: From Design to Applications. Adv. Mater. 2026, 38, e73465. [Google Scholar] [CrossRef] [PubMed]
- Alhalafi, Z.H.; Alsharif, M.A.; Alahmari, H.; Alenazy, D.M.; Alessa, H.; Hameed, A.M.; Abu-Melha, S.; El-Metwaly, N. Study of Photophysical Properties, Photodegradation Breakdown Cost and Recycling Processes of Zn/SnO2 Quantum Dots via Real Industrial Wastewater Treatment. Arab. J. Chem. 2026, 19, 7562025. [Google Scholar] [CrossRef]
- Sakurai, H.; Kiuchi, M.; Jin, T. Macroaggregation Effect of TiO2 Nanoparticles on the Photocatalytic Activity and Post-Reaction Separation for Aqueous Degradation of Organic Compounds. J. Environ. Chem. Eng. 2021, 9, 104936. [Google Scholar] [CrossRef]
- Ma, Y.; Duan, Y.; Su, H.; Li, Y.; Chen, Z.; Li, J. Status and Challenges of Photocatalysis in Environmental Applications: Photocatalyst Deactivation. Nano Res. 2025, 18, 94907750. [Google Scholar] [CrossRef]
- Dhada, I.; Sharma, M.; Nagar, P.K. Quantification and Human Health Risk Assessment of By-Products of Photo Catalytic Oxidation of Ethylbenzene, Xylene and Toluene in Indoor Air of Analytical Laboratories. J. Hazard. Mater. 2016, 316, 1–10. [Google Scholar] [CrossRef] [PubMed]
- Nguyen, J.D.; Matsuura, B.S.; Stephenson, C.R.J. A Photochemical Strategy for Lignin Degradation at Room Temperature. J. Am. Chem. Soc. 2014, 136, 1218–1221. [Google Scholar] [CrossRef] [PubMed]
- Li, S.; Hao, Z.; Wang, K.; Tong, M.; Yang, Y.; Jiang, H.; Xiao, Y.; Zhang, F. Visible Light-Enabled Selective Depolymerization of Oxidized Lignin by an Organic Photocatalyst. Chem. Commun. 2020, 56, 11243–11246. [Google Scholar] [CrossRef] [PubMed]
- Yan, X.; Tang, Y.; Ma, C.; Liu, Y.; Xu, J. Deactivation and Regeneration of Photocatalysts: A Review. Desalin. Water Treat. 2018, 124, 160–176. [Google Scholar] [CrossRef]















| Lignin Type | Annual Prod. (kt/y) | Purity (%) | Sulphur/ Ash (%) | Sugars (%) | Mw (g/mol) | PDI | Solubility |
|---|---|---|---|---|---|---|---|
| Kraft | 90 | 88–95 | 1–3/ 0.5–3 | 1.0–2.3 | 1500–5000 to 25,000 | 2.1–3.5 | Alkaline solutions and high-polar organic solvents. |
| Lignosulphonates | 1.8 | 50–70 | 0/ 0.7–2.3 | 1.5–3.0 | 1000–50,000 to 150,000 | 4.2–7 | Water soluble and high-polar organic solvents. |
| Organosolv | 3 | 97–98 | 0/ 1.7 | 1.0–3 | 500–10,800 | 1–4.7 | Basic solution and organic solvents |
| Soda | 5–10 | 88–95 | 3.5–8/ 4–8 | - | 1000–3000 to 15,000 | 2.5–3.5 | Alkaline solutions and polar organic solvents. |
| Catalyst | Substrate | Conversion % | Light Source | Medium | Reaction Time | Reactor | Yield % | Ref. |
|---|---|---|---|---|---|---|---|---|
| 20 wt.% Ni/TiO2 | β-O-4 model compound (2-phenoxy-1-phenylethanone) | 100 | UV (30 W) | i-PrOH | 12 h | Batch | Acetophenone (88), Phenol (82) | [88] |
| Ag-TiO2 (air-sintered) | Kraft lignin | 33.82 | UV (400 W, λ = 365 nm) | CH3CN/H2O (80:20 v/v) | 5 h | Batch | Not specified | [90] |
| Bi1%/Pt1–TiO2 | Lignosulphonate | 84.50 | Xe lamp (300 W) | Aqueous solution | 1 h | Batch | Guaiacol (22.7) | [91] |
| Pt/TiO2 | Synthetic lignin | — | UV (35 W, λ = 254 nm) | Water | 15 min | Batch | Mineralization (DOC removal) | [95] |
| Fe-TiO2 | Native lignin | — | UV (21 W, λ = 254 nm) | NaOH (0.5 M) | 5 h | Flow | BHT, DBP, DIBP | [96] |
| N-TiO2 | Alkali lignin | 32.00 | Xe arc lamp (200 W, UV–Vis) | NaOH/H2O | 120 min | Batch | Not specified | [93] |
| TiO2/lignin composite | Kraft lignin | 40.28 | UV (400 W, λ = 365 nm) | CH3CN/H2O (80:20 v/v) | 5 h | Batch | Vanillin (1.09) | [94] |
| SiO2–TiO2 | β-O-4 model compound (2-phenoxy-1-phenylethanol) | 90.00 | Xe lamp (500 W) | Water | 120 min | Batch | Acetophenone, Phenol | [97] |
| H-TiO2-N2 | lignin model | 100 | Xe lamp (500 W)) | Water | 80 min | Batch | Aromatic monomers | [98] |
| Catalyst | Substrate Conversion (%) | Light Source | Solvent | Atmosphere | Time | Reactor | Main Product (Yield) | Ref. |
|---|---|---|---|---|---|---|---|---|
| CdS QD-4.4 nm | 2-phenoxy-1-phenylethanol 99% | Xe-lamp (420–780 nm) | CH3CN | N2 | 3 h | Batch | Acetophenone 91% Phenol 93% | [35] |
| CdS-C3 QDs | Native lignin | Xenon lamp (400–780 nm) | CH3CN/H2O (1/1) | Ar | 8 h | Batch | Functionalized monomeric aromatics 27% | [113] |
| Ag2S (2%)@CdS | 2-phenoxy-1-phenylethanol 99% | Blue light-emitting diodes LED (6 W) | CH3CN | Ar | 3 h | Batch | Acetophenone 91% phenol 95% | [114] |
| Ni/CdS | 2-phenoxy-1-phenylethanol >90% | Blue LEDs 8 W (440–460 nm) | CH3CN/0.1 M KOH (2:8) | N2 | 2 h | Batch | Acetophenone 90% Phenol 90% | [115] |
| CdS | 2-phenoxy-1-phenylethanol >90% | Blue lamps 100 W (455 nm) | Aqueous micellar medium | N2 | 30 min | Batch | Acetophenone 74.65% Phenol 81.79% | [116] |
| Catalyst | Substrate Conversion (%) | Light Source | Solvent | Atmosphere | Time | Reactor | Main Product (Yield) | Ref. |
|---|---|---|---|---|---|---|---|---|
| ZnIn2S4 | 2-phenoxy-1-phenylethanol 99% | Blue LEDs (9.6 W, λ = 455 nm) | CH3CN | Ar (42 °C) | 4 h | Batch | Acetophenone 83% Phenol 90% | [118] |
| Zn4In2S7 | 2-phenoxy-1-phenylethanol 99% | Xe lamp (600 mW/cm2, λ = 400–780 nm) | CH3CN/H2O (1:1) | N2 | 4 h | Batch | Acetophenone 86% Phenol 82% | [120] |
| ZIS-3 | 2-phenoxy-1-phenylethanol 100% | Xe lamp, (0.35 W/cm2) | CH3CN:H2O (2:3, v/v) | Ar | 1.5 h | Batch | Acetophenone 91.9% phenol 93.7% | [121] |
| CZIS | 2-phenoxy-1-phenylethanol >90% | Sunlight (115 mW/cm2) | CH3CN/0.1 M KOH (2:8) | N2 | 3 h | Batch | Acetophenone 95% Phenol 96% | [117] |
| ZIS-Sv0.6 | dioxin lignin > 80.42% | light density (600 W/cm2) | BMIMNTf2 | N2 | 12 h | Batch | Aromatic compounds | [122] |
| Catalyst | Substrate Conversion (%) | Light | Solvent | Atmosphere | Time | Reactor | Products (%) | Ref |
|---|---|---|---|---|---|---|---|---|
| mpg-g-C3N4 | ![]() | LED 6 W (λ = 455 nm) | CH3CN | O2 | 10 h | Batch | ![]() | [139] |
| MCSCN-75 | ![]() | 20 W LED (λ = 420–430 nm) | CH3CN | Air | 90 min | Batch | ![]() | [140] |
| W10D1U9-2 | ![]() | xenon arc lamp (0.35 W/cm2) | CH3CN | O2 | 5 h | Batch | ![]() | [141] |
| oxidized g-C3N4 | ![]() | xenon lamp (113.1 mW/cm2). | CH3CN | Air | 0.5 h | Batch | ![]() | [142] |
| g-C3N4 | ![]() | Xe lamp 300 W | SDS-8/CH3COOH (2.9/0.1) | O2 | 2 h | Batch | ![]() | [143] |
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Mel, N.; Dávila-Rodríguez, I.; González-Alriols, M.; Labidi, J. Recent Advances in Heterogeneous Photocatalysis for Lignin Valorisation. Catalysts 2026, 16, 601. https://doi.org/10.3390/catal16070601
Mel N, Dávila-Rodríguez I, González-Alriols M, Labidi J. Recent Advances in Heterogeneous Photocatalysis for Lignin Valorisation. Catalysts. 2026; 16(7):601. https://doi.org/10.3390/catal16070601
Chicago/Turabian StyleMel, Najiba, Izaskun Dávila-Rodríguez, María González-Alriols, and Jalel Labidi. 2026. "Recent Advances in Heterogeneous Photocatalysis for Lignin Valorisation" Catalysts 16, no. 7: 601. https://doi.org/10.3390/catal16070601
APA StyleMel, N., Dávila-Rodríguez, I., González-Alriols, M., & Labidi, J. (2026). Recent Advances in Heterogeneous Photocatalysis for Lignin Valorisation. Catalysts, 16(7), 601. https://doi.org/10.3390/catal16070601











