Submitted:
13 July 2026
Posted:
14 July 2026
You are already at the latest version
Abstract

Keywords:
1. Introduction
2. Materials and Methods
2.1. General Procedures and Techniques
2.2. General Procedure to Optimize Reaction Conditions for the Preparation of Styrene Carbonate
2.3. General Procedure for the Synthesis of Cyclic Carbonates
2.4. Recyclability Study
2.5. Computational Details
3. Results and Discussion
3.1. Catalytic Results for the Preparation of Different Cyclic Carbonates
3.2. Reactive Path Computed at DFT Level
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Available online: Https://Gml.Noaa.Gov/Aggi/.
- Hossain, M.F. Extreme Level of CO2 Accumulation into the Atmosphere Due to the Unequal Global Carbon Emission and Sequestration. Water Air Soil Pollut. 2022, 233, 105. [Google Scholar] [CrossRef]
- Nunes, L.J.R. The Rising Threat of Atmospheric CO2: A Review on the Causes, Impacts, and Mitigation Strategies. Environments 2023, 10, 66. [Google Scholar] [CrossRef]
- Wagner, A.; Sahm, C.D.; Reisner, E. Towards Molecular Understanding of Local Chemical Environment Effects in Electro-and Photocatalytic CO2 Reduction. Nat. Catal. 2020, 3, 775–786. [Google Scholar] [CrossRef]
- Kabir, M.; Habiba, U.E.; Khan, W.; Shah, A.; Rahim, S.; De los Rios-Escalante, P.R.; Farooqi, Z.-U.-R.; Ali, L.; Shafiq, M. Climate Change Due to Increasing Concentration of Carbon Dioxide and Its Impacts on Environment in 21st Century; a Mini Review. J. King Saud. Univ. Sci. 2023, 35, 102693. [Google Scholar] [CrossRef]
- Crippa, M.; Guizzardi, D.; Pagani, F.; Banja, M.; Muntean, M.; Schaaf, E.; Becker, W.; Monforti-Ferrario, F.; Quadrelli, R.; Risquez Martin, A. GHG Emissions of All World Countries. Publ. Off. Eur. Union Luxemb. 2023, 10, 953322. [Google Scholar] [CrossRef]
- Fawzy, S.; Osman, A.I.; Doran, J.; Rooney, D.W. Strategies for Mitigation of Climate Change: A Review. Environ. Chem. Lett. 2020, 18, 2069–2094. [Google Scholar] [CrossRef]
- Geweda, A.E.; Zayed, M.E.; Khan, M.Y.; Alquaity, A.B.S. Mitigating CO2 Emissions: A Review on Emerging Technologies/Strategies for CO2 Capture. J. Energy Inst. 2025, 118, 101911. [Google Scholar] [CrossRef]
- Lin, Q.; Zhang, X.; Wang, T.; Zheng, C.; Gao, X. Technical Perspective of Carbon Capture, Utilization, and Storage. Engineering 2022, 14, 27–32. [Google Scholar] [CrossRef]
- Chai, S.Y.W.; Ngu, L.H.; How, B.S. Review of Carbon Capture Absorbents for CO2 Utilization. Greenh. Gases Sci. Technol. 2022, 12, 394–427. [Google Scholar] [CrossRef]
- Leonzio, G.; Shah, N. Recent Advancements and Challenges in Carbon Capture, Utilization and Storage. Curr. Opin. Green Sustain. Chem. 2024, 46, 100895. [Google Scholar] [CrossRef]
- Sankaran, K. Turning Black to Green: Circular Economy of Industrial Carbon Emissions. Energy Sustain. Dev. 2023, 74, 463–470. [Google Scholar] [CrossRef]
- Pires da Mata Costa, L.; Micheline Vaz de Miranda, D.; Couto de Oliveira, A.C.; Falcon, L.; Stella Silva Pimenta, M.; Guilherme Bessa, I.; Juarez Wouters, S.; Andrade, M.H.S.; Pinto, J.C. Capture and Reuse of Carbon Dioxide (CO2) for a Plastics Circular Economy: A Review. Processes 2021, 9, 759. [Google Scholar] [CrossRef]
- Peres, C.B.; Resende, P.M.R.; Nunes, L.J.R.; Morais, L.C. de Advances in Carbon Capture and Use (CCU) Technologies: A Comprehensive Review and CO2 Mitigation Potential Analysis. Clean Technol. 2022, 4, 1193–1207. [Google Scholar] [CrossRef]
- Francés-Poveda, E.; Navarro, M.; Beroíza-Duhart, M.; Mahecha, G.L.; Urzúa, J.I.; Valenzuela, M.L.; de la Cruz-Martínez, F.; Douglas-Gallardo, O.A.; Werlinger, F.; Lara-Sánchez, A.; et al. Effective One-Component Organocatalysts for Eco-Friendly Production of Cyclic Carbonates. Reactions 2025, 6, 8. [Google Scholar] [CrossRef]
- Yang, W.; Qiu, S.; Zhang, J.; Cheng, Z.; Song, L.; Hu, Y. Innovative Design and Green Synthesis of Bio-Based Non-Isocyanate Polyurethanes: Efficient Combination of Cardanol and Carbon Dioxide with High Fire Safety and Robust Adhesion. Chem. Eng. J. 2024, 482, 148846. [Google Scholar] [CrossRef]
- Tian, J.; Wang, Z.; Cui, S. Progress in the Green Catalytic Conversion of Carbon Dioxide and Renewable Feedstocks into Bio-Based Polymers. In Advances in Bioenergy; Elsevier, 2025; Vol. 10, pp. 187–218. [Google Scholar]
- Liu, X.; Zhong, H.; Wang, C.; He, D.; Jin, F. CO2 Reduction into Formic Acid under Hydrothermal Conditions: A Mini Review. Energy Sci. Eng. 2022, 10, 1601–1613. [Google Scholar] [CrossRef]
- Xie, S.; Zhang, W.; Lan, X.; Lin, H. CO2 Reduction to Methanol in the Liquid Phase: A Review. ChemSusChem 2020, 13, 6141–6159. [Google Scholar] [CrossRef] [PubMed]
- Beyazay, T.; Martin, W.F.; Tuysuz, H. Direct Synthesis of Formamide from CO2 and H2O with Nickel–Iron Nitride Heterostructures under Mild Hydrothermal Conditions. J. Am. Chem. Soc. 2023, 145, 19768–19779. [Google Scholar] [CrossRef] [PubMed]
- Mishra, V.; Peter, S.C. A Comprehensive Overview of the Catalytic Pathway for CO2 Utilization with Epoxide to Cyclic Carbonate. Chem Catal. 2024, 4, 100796. [Google Scholar] [CrossRef]
- Bhat, G.A.; Darensbourg, D.J. Progress in the Catalytic Reactions of CO2 and Epoxides to Selectively Provide Cyclic or Polymeric Carbonates. Green Chem. 2022, 24, 5007–5034. [Google Scholar] [CrossRef]
- Claver, C.; Yeamin, M. Bin; Reguero, M.; Masdeu-Bultó, A.M. Recent Advances in the Use of Catalysts Based on Natural Products for the Conversion of CO2 into Cyclic Carbonates. Green Chem. 2020, 22, 7665–7706. [Google Scholar] [CrossRef]
- Prasad, D.; Patil, K.N.; Chaudhari, N.K.; Kim, H.; Nagaraja, B.M.; Jadhav, A.H. Paving Way for Sustainable Earth-Abundant Metal Based Catalysts for Chemical Fixation of CO2 into Epoxides for Cyclic Carbonate Formation. Catal. Rev. 2022, 64, 356–443. [Google Scholar]
- Wang, B.; Wang, L.; Lin, J.; Xia, C.; Sun, W. Multifunctional Zn-N4 Catalysts for the Coupling of CO2 with Epoxides into Cyclic Carbonates. ACS Catal. 2023, 13, 10386–10393. [Google Scholar] [CrossRef]
- Pescarmona, P.P. Cyclic Carbonates Synthesised from CO2: Applications, Challenges and Recent Research Trends. Curr. Opin. Green Sustain. Chem. 2021, 29, 100457. [Google Scholar] [CrossRef]
- Mundo, F.; Caillol, S.; Ladmiral, V.; Meier, M.A.R. On Sustainability Aspects of the Synthesis of Five-Membered Cyclic Carbonates. ACS Sustain. Chem. Eng. 2024, 12, 6452–6466. [Google Scholar] [CrossRef]
- Trapasso, G.; Aricò, F. Organic Carbonates as Green Media: From Laboratory Syntheses to Industrial Applications. Green Chem. 2025, 27, 6925–6966. [Google Scholar] [CrossRef]
- Qian, Y.; Chu, Y.; Zheng, Z.; Shadike, Z.; Han, B.; Xiang, S.; Kang, Y.; Hu, S.; Cao, C.; Zhong, L. A New Cyclic Carbonate Enables High Power/Low Temperature Lithium-Ion Batteries. Energy Storage Mater. 2022, 45, 14–23. [Google Scholar] [CrossRef]
- He, M.; Su, C.-C.; Peebles, C.; Zhang, Z. The Impact of Different Substituents in Fluorinated Cyclic Carbonates in the Performance of High Voltage Lithium-Ion Battery Electrolyte. J. Electrochem. Soc. 2021, 168, 10505. [Google Scholar] [CrossRef]
- Werlinger, F.; Caballero, M.P.; Trofymchuk, O.S.; Flores, M.E.; Moreno-Villoslada, I.; Cruz-Martínez, F. de la; Castro-Osma, J.A.; Tejeda, J.; Martínez, J.; Lara-Sánchez, A. Turning Waste into Resources. Efficient Synthesis of Biopolyurethanes from Used Cooking Oils and CO2. J. CO2 Util. 2024, 79, 102659. [Google Scholar] [CrossRef]
- Turnaturi, R.; Zagni, C.; Patamia, V.; Barbera, V.; Floresta, G.; Rescifina, A. CO2-Derived Non-Isocyanate Polyurethanes (NIPUs) and Their Potential Applications. Green Chem. 2023, 25, 9574–9602. [Google Scholar] [CrossRef]
- Al-Qaisi, F.M.; Qaroush, A.K.; Okashah, I.K.; Eftaiha, A.F.; Vasko, P.; Alsoubani, F.; Repo, T. The Use of Sustainable Transition Metals for the Cycloaddition of Epoxides and CO2 under Mild Reaction Conditions. Eur. J. Inorg. Chem. 2023, 26, e202200357. [Google Scholar] [CrossRef]
- Paradiso, V.; Capaccio, V.; Lamparelli, D.H.; Capacchione, C. Metal Complexes Bearing Sulfur-Containing Ligands as Catalysts in the Reaction of CO2 with Epoxides. Catalysts 2020, 10, 825. [Google Scholar] [CrossRef]
- Cao, H.; Liu, S.; Wang, X. Environmentally Benign Metal Catalyst for the Ring-Opening Copolymerization of Epoxide and CO2: State-of-the-Art, Opportunities, and Challenges. Green Chem. Eng. 2022, 3, 111–124. [Google Scholar] [CrossRef]
- Guo, L.; Lamb, K.J.; North, M. Recent Developments in Organocatalysed Transformations of Epoxides and Carbon Dioxide into Cyclic Carbonates. Green Chem. 2021, 23, 77–118. [Google Scholar] [CrossRef]
- de Almeida Bezerra, W.; Milani, J.L.S.; de Jesus Franco, C.H.; Martins, F.T.; de Fátima, Â.; da Mata, Á.F.A.; das Chagas, R.P. Bis-Benzimidazolium Salts as Bifunctional Organocatalysts for the Cycloaddition of CO2 with Epoxides. Mol. Catal. 2022, 530, 112632. [Google Scholar] [CrossRef]
- Faizan, M.; Srivastav, N.; Pawar, R. Azaboratrane as an Exceptionally Potential Organocatalyst for the Activation of CO2 and Coupling with Epoxide. Mol. Catal. 2022, 521, 112201. [Google Scholar] [CrossRef]
- Fonseca-López, D.; Ezenarro-Salcedo, D.; Zapata-Rivera, J.; Rojas, R.S.; Hurtado, J.J. Salophen-Type Organocatalysts for the Cycloaddition of CO2 and Epoxides under Solvent, Halide, and Metal-Free Conditions. ACS Omega 2024, 9, 19385–19394. [Google Scholar] [CrossRef] [PubMed]
- Theerathanagorn, T.; Vidal-López, A.; Comas-Vives, A.; Poater, A.; D′ Elia, V. Cycloaddition of CO2 to Epoxides “around Water”: A Strategy to Apply and Recycle Efficient Water-Soluble Bio-Based Organocatalysts in Biphasic Media. Green Chem. 2023, 25, 4336–4349. [Google Scholar] [CrossRef]
- Bondarenko, G.N.; Ganina, O.G.; Lysova, A.A.; Fedin, V.P.; Beletskaya, I.P. Cyclic Carbonates Synthesis from Epoxides and CO2 over NIIC-10 Metal-Organic Frameworks. J. CO2 Util. 2021, 53, 101718. [Google Scholar] [CrossRef]
- Zhai, G.; Liu, Y.; Lei, L.; Wang, J.; Wang, Z.; Zheng, Z.; Wang, P.; Cheng, H.; Dai, Y.; Huang, B. Light-Promoted CO2 Conversion from Epoxides to Cyclic Carbonates at Ambient Conditions over a Bi-Based Metal–Organic Framework. ACS Catal. 2021, 11, 1988–1994. [Google Scholar] [CrossRef]
- Gupta, A.K.; Guha, N.; Krishnan, S.; Mathur, P.; Rai, D.K. A Three-Dimensional Cu (II)-MOF with Lewis Acid− Base Dual Functional Sites for Chemical Fixation of CO2 via Cyclic Carbonate Synthesis. J. CO2 Util. 2020, 39, 101173. [Google Scholar] [CrossRef]
- Khattak, Z.A.K.; Ahmad, N.; Younus, H.A.; Ullah, H.; Yu, B.; Munawar, K.S.; Ashfaq, M.; Yaseen, M.; Danish, M.; Al-Abri, M.; et al. Ambient Conversion of CO2 and Epoxides to Cyclic Carbonates Using 3D Amide-Functionalized MOFs. Catal. Sci. Technol. 2024, 14, 1888–1901. [Google Scholar] [CrossRef]
- Qu, Y.; Chen, Y.; Sun, J. Conversion of CO2 with Epoxides to Cyclic Carbonates Catalyzed by Amino Acid Ionic Liquids at Room Temperature. J. CO2 Util. 2022, 56, 101840. [Google Scholar] [CrossRef]
- Comin, E.; Aquino, A.S.; Favero, C.; Mignoni, M.L.; de Souza, R.F.; de Souza, M.O.; Pergher, S.B.C.; da Silva Campos, C.X.; Bernardo-Gusmão, K. Cyclic Carbonate Synthesis via Cycloaddition of CO2 and Epoxides Catalysed by Beta Zeolites Containing Alkyl Imidazolium Ionic Liquids Used as Structure-Directing Agents. Mol. Catal. 2022, 530, 112624. [Google Scholar] [CrossRef]
- Norouzi, F.; Abdolmaleki, A. CO2 Conversion into Carbonate Using Pyridinium-Based Ionic Liquids under Mild Conditions. Fuel 2023, 334, 126641. [Google Scholar] [CrossRef]
- Wang, Y.; Liu, Y.; Su, Q.; Li, Y.; Deng, L.; Dong, L.; Fu, M.; Liu, S.; Cheng, W. Poly (Ionic Liquid) Materials Tailored by Carboxyl Groups for the Gas Phase-Conversion of Epoxide and CO2 into Cyclic Carbonates. J. CO2 Util. 2022, 60, 101976. [Google Scholar] [CrossRef]
- Kim, D.; Subramanian, S.; Thirion, D.; Song, Y.; Jamal, A.; Otaibi, M.S.; Yavuz, C.T. Quaternary Ammonium Salt Grafted Nanoporous Covalent Organic Polymer for Atmospheric CO2 Fixation and Cyclic Carbonate Formation. Catal. Today 2020, 356, 527–534. [Google Scholar] [CrossRef]
- Sarkar, S.; Ghosh, S.; Sani, R.; Seth, J.; Khan, A.; Islam, S.M. Covalent Immobilization of Quaternary Ammonium Salts on Covalent Organic Framework: Sustainable Intensification Strategy for the Synthesis of Cyclic Carbonates from CO2. ACS Sustain. Chem. Eng. 2023, 11, 14422–14434. [Google Scholar] [CrossRef]
- Neto, B.A.D.; Souza, R.Y. de; Dupont, J. Can Any Basic/Nucleophile Quaternary Salt Promote the Carbonatation of Epoxides? A Review. ACS Omega 2025, 10, e03990. [Google Scholar] [CrossRef]
- Zhang, F.; Bulut, S.; Shen, X.; Dong, M.; Wang, Y.; Cheng, X.; Liu, H.; Han, B. Halogen-Free Fixation of Carbon Dioxide into Cyclic Carbonates via Bifunctional Organocatalysts. Green Chem. 2021, 23, 1147–1153. [Google Scholar] [CrossRef]
- Martínez, J.; de la Cruz-Martínez, F.; de Sarasa Buchaca, M.M.; Caballero, M.P.; Ojeda-Amador, R.M.; Salvador, M.D.; Fregapane, G.; Tejeda, J.; Castro-Osma, J.A.; Lara-Sánchez, A. Valorization of Agricultural Waste and CO2 into Bioderived Cyclic Carbonates. J. Environ. Chem. Eng. 2021, 9, 105464. [Google Scholar] [CrossRef]
- Mesías-Salazar, Á.; Rojas, R.S.; Carrillo-Hermosilla, F.; Martínez, J.; Antiñolo, A.; Trofymchuk, O.S.; Nachtigall, F.M.; Santos, L.S.; Daniliuc, C.G. Guanidinium Iodide Salts as Single Component Catalysts for CO2 to Epoxide Fixation. New J. Chem. 2024, 48, 105–111. [Google Scholar] [CrossRef]
- Cárdenas-Toledo, V.; Francés-Poveda, E.; Barrientos-Barichivic, F.; Valenzuela, J.; Douglas-Gallardo, O.A.; Flores, M.E.; Lara-Sánchez, A.; Trofymchuk, O.S.; Werlinger, F.; Martínez, J. Amino Acids as Eco-Friendly Bio-Organocatalysts in ROCOP for the Preparation of Biobased Oligomers from Fatty Acid Epoxides and Waste Sunflower Oil. J. Catal. 2025, 442, 115903. [Google Scholar] [CrossRef]
- Werlinger, F.; Caprile, R.; Cárdenas-Toledo, V.; Tarraff, B.; Mesías-Salazar, Á.; Rojas, R.S.; Martínez, J.; Trofymchuk, O.S.; Flores, M.E. Approach to Circular Chemistry Preparing New Polyesters from Olive Oil. ACS Omega 2023, 8, 21540–21548. [Google Scholar] [CrossRef] [PubMed]
- Trojanowska, D.; Monie, F.; Perotto, G.; Athanassiou, A.; Grignard, B.; Grau, E.; Vidil, T.; Cramail, H.; Detrembleur, C. Valorization of Waste Biomass for the Fabrication of Isocyanate-Free Polyurethane Foams. Green Chem. 2024, 26, 8383–8394. [Google Scholar] [CrossRef]
- Idrissi, N.E.; Aitbella, H.; Merle, N.; Cazaux, F.; Prates Ramalho, J.P.; Belachemi, L.; Kaddami, H.; Zinck, P. Cellulose Nanocrystals-Supported Organocatalyst for the Synthesis of Cyclic Carbonates via Cycloaddition of Carbon Dioxide to Epoxide. Carbohydr. Polym. 2025, 364, 123762. [Google Scholar] [CrossRef] [PubMed]
- Nazeri, M.T.; Ramezani, M.; Javanbakht, S.; Shaabani, A. Chemical CO2 Fixation Using a Green Biocatalytic System Based on Ugi Conjugated Cobalt Phthalocyanine on Cellulose. Sustain. Energy Fuels 2022, 6, 5134–5145. [Google Scholar] [CrossRef]
- Parodi, A.; Vagnoni, M.; Frontali, L.; Albonetti, C.; De Giorgio, F.; Mezzi, A.; Petri, E.; Samorì, C.; Soavi, F.; Ruani, G.; et al. Bifunctional Heterogeneous Catalysts from Biomass and Waste Polysaccharides for the Conversion of CO2 into Cyclic Carbonates. J. Mater. Chem. A Mater. 2022, 11, 775–788. [Google Scholar]
- Masteri-Farahani, M.; Ghahremani, M.; Niakan, M. Sulfonic Acid Functionalized Support Materials as Efficient Solid Acid Catalysts for 5-Hydroxymethylfurfural Production from Sugars. Energy Fuels 2025, 39, 15225–15241. [Google Scholar]
- Deris, N.H.; Rashid, U.; Soltani, S.; Choong, T.S.; Nehdi, I.A. Study the Effect of Various Sulfonation Methods on Catalytic Activity of Carbohydrate-Derived Catalysts for Ester Production. Catalysts 2020, 10, 638. [Google Scholar] [CrossRef]
- Deandra, P.P.; Santoso, H.; Witono, J.R.B. Carbon Based Sulfonated Catalyst as an Environment Friendly Material: A Review. AIP Conf. Proc. 2022, 2470, 40006. [Google Scholar] [CrossRef]
- Perez, G.A.P.; Dumont, M.-J. Polyvinyl Sulfonated Catalyst and the Effect of Sulfonic Sites on the Dehydration of Carbohydrates. Chem. Eng. J. 2021, 419, 129573. [Google Scholar] [CrossRef]
- Rokhum, S.L.; Changmai, B.; Kress, T.; Wheatley, A.E.H. A One-Pot Route to Tunable Sugar-Derived Sulfonated Carbon Catalysts for Sustainable Production of Biodiesel by Fatty Acid Esterification. Renew. Energy 2022, 184, 908–919. [Google Scholar] [CrossRef]
- Hosseini, S.; Janaun, J.; Choong, T.S.Y. Feasibility of Honeycomb Monolith Supported Sugar Catalyst to Produce Biodiesel from Palm Fatty Acid Distillate (PFAD). Process Saf. Environ. Prot. 2015, 98, 285–295. [Google Scholar] [CrossRef]
- Dias, A.P.S.; Saraiva, N.; Rijo, B.; Pereira, M.F.C.; Santos, L.F.; Galhano, R.; Paulo, I. Sugar Derived Hydrochar Catalysts for Enhanced Biodiesel Production via Esterification. Fuel 2024, 374, 132459. [Google Scholar] [CrossRef]
- Prabhakar, P.S.; Dutta, S. Ketalization of Carbohydrate-Derived Levulinic Esters Using Cellulose Sulfuric Acid as a Heterogeneous Catalyst: A Closed-Loop Biorefinery Approach. RSC Adv. 2025, 15, 11301–11307. [Google Scholar] [CrossRef] [PubMed]
- Neese, F. The ORCA Program System. WIREs Comput. Mol. Sci. 2012, 2, 73–78. [Google Scholar]
- Neese, F. Software Update: The ORCA Program System—Version 6.0. WIREs Comput. Mol. Sci. 2025, 15, e70019. [Google Scholar] [CrossRef]
- Stephens, P.J.; Devlin, F.J.; Chabalowski, C.F.; Frisch, M.J. Ab Initio Calculation of Vibrational Absorption and Circular Dichroism Spectra Using Density Functional Force Fields. J. Phys. Chem. 1994, 98, 11623–11627. [Google Scholar] [CrossRef]
- Lee, C.; Yang, W.; Parr, R.G. Development of the Colle-Salvetti Correlation-Energy Formula into a Functional of the Electron Density. Phys. Rev. B 1988, 37, 785. [Google Scholar] [CrossRef]
- Becke, A.D. Density-functional Thermochemistry. III. The Role of Exact Exchange. J. Chem. Phys. 1993, 98, 5648–5652. [Google Scholar] [CrossRef]
- Weigend, F.; Ahlrichs, R. Balanced Basis Sets of Split Valence, Triple Zeta Valence and Quadruple Zeta Valence Quality for H to Rn: Design and Assessment of Accuracy. Phys. Chem. Chem. Phys. 2005, 7, 3297–3305. [Google Scholar] [CrossRef] [PubMed]
- Weigend, F. Accurate Coulomb-Fitting Basis Sets for H to Rn. Phys. Chem. Chem. Phys. 2006, 8, 1057–1065. [Google Scholar] [CrossRef] [PubMed]
- Caldeweyher, E.; Ehlert, S.; Hansen, A.; Neugebauer, H.; Spicher, S.; Bannwarth, C.; Grimme, S. A Generally Applicable Atomic-Charge Dependent London Dispersion Correction. J. Chem. Phys. 2019, 150, 154122. [Google Scholar] [CrossRef] [PubMed]
- Bannwarth, C.; Ehlert, S.; Grimme, S. GFN2-XTB—An Accurate and Broadly Parametrized Self-Consistent Tight-Binding Quantum Chemical Method with Multipole Electrostatics and Density-Dependent Dispersion Contributions. J. Chem. Theory Comput. 2019, 15, 1652–1671. [Google Scholar] [CrossRef] [PubMed]
- Ásgeirsson, V.; Birgisson, B.O.; Bjornsson, R.; Becker, U.; Neese, F.; Riplinger, C.; Jónsson, H. Nudged Elastic Band Method for Molecular Reactions Using Energy-Weighted Springs Combined with Eigenvector Following. J. Chem. Theory Comput. 2021, 17, 4929–4945. [Google Scholar] [CrossRef] [PubMed]
- Mardirossian, N.; Head-Gordon, M. ΩB97M-V: A Combinatorially Optimized, Range-Separated Hybrid, Meta-GGA Density Functional with VV10 Nonlocal Correlation. J. Chem. Phys. 2016, 144, 214110. [Google Scholar] [CrossRef] [PubMed]
- Altun, A.; Riplinger, C.; Neese, F.; Bistoni, G. Exploring the Accuracy Limits of PNO-Based Local Coupled-Cluster Calculations for Transition-Metal Complexes. J. Chem. Theory Comput. 2023, 19, 2039–2047. [Google Scholar] [CrossRef] [PubMed]
- Riplinger, C.; Neese, F. An Efficient and near Linear Scaling Pair Natural Orbital Based Local Coupled Cluster Method. J. Chem. Phys. 2013, 138, 034106. [Google Scholar] [CrossRef] [PubMed]
- Li, J.; Tao, S.; Chen, F.; Li, M.; Liu, N. N-Heterocyclic Carbene-Pyridine Ligand Coordinated Mo(II) Complexes Catalyzed Synthesis of Cyclic Carbonates from Carbon Dioxide and Epoxides. J. CO2 Util. 2023, 69, 102384. [Google Scholar] [CrossRef]
- Hoseini, K.S.; Razaghi, M.; Nouri, T.; Khorasani, M. Direct Coupling of CO2 with Epoxides Catalyzed by Lanthanum(III) Supported on Magnetic Mesoporous Organosilica Nanoparticles. Sci. Rep. 2023, 13, 5521. [Google Scholar] [CrossRef] [PubMed]
- Martínez de Sarasa Buchaca, M.; de la Cruz-Martínez, F.; Francés-Poveda, E.; Fernández-Baeza, J.; Sánchez-Barba, L.F.; Garcés, A.; Castro-Osma, J.A.; Lara-Sánchez, A. Synthesis of Nonisocyanate Poly(Hydroxy)Urethanes from Bis(Cyclic Carbonates) and Polyamines. Polymers 2022, 14, 2719. [Google Scholar] [CrossRef] [PubMed]
- Martínez, J.; de la Cruz-Martínez, F.; Martínez de Sarasa Buchaca, M.; Fernández-Baeza, J.; Sánchez-Barba, L.F.; North, M.; Castro-Osma, J.A.; Lara-Sánchez, A. Efficient Synthesis of Cyclic Carbonates from Unsaturated Acids and Carbon Dioxide and Their Application in the Synthesis of Biobased Polyurethanes. Chempluschem 2021, 86, 460–468. [Google Scholar] [CrossRef] [PubMed]
- Pronoitis, C.; Hakkarainen, M.; Odelius, K. Structurally Diverse and Recyclable Isocyanate-Free Polyurethane Networks from CO2-Derived Cyclic Carbonates. ACS Sustain. Chem. Eng. 2022, 10, 2522–2531. [Google Scholar] [CrossRef]
- Huang, J.; Shen, B. Catalytic Copolymerization of Carbon Dioxide and Cyclohexene Oxide by a Trinuclear Cyclohexane-Bridged Tetradentate Schiff Base Chromium Complex. Polym. Chem. 2024, 15, 4519–4528. [Google Scholar] [CrossRef]
- Chiarcos, R.; Sparnacci, K.; Antonioli, D.; Carroccio, S.C.; Curcuruto, G.; Po, R.; Biagini, P.; Losio, S.; Laus, M. Copolymerization of CO2 and Cyclohexene Oxide in the Presence of Functional Transfer Agents Provides Telechelic Polycarbonates: Synthesis of CO2-Containing Macromonomers and Macroinitiators. Macromol. Chem. Phys. 2025, 226, 2400383. [Google Scholar]
- Sobrino, S.; Navarro, M.; Fernández-Baeza, J.; Sánchez-Barba, L.F.; Lara-Sánchez, A.; Garcés, A.; Castro-Osma, J.A.; Rodríguez, A.M. Efficient Production of Poly (Cyclohexene Carbonate) via ROCOP of Cyclohexene Oxide and CO2 Mediated by NNO-Scorpionate Zinc Complexes. Polymers 2020, 12, 2148. [Google Scholar] [CrossRef] [PubMed]
- de la Cruz-Martínez, F.; Martínez de Sarasa Buchaca, M.; Martínez, J.; Fernández-Baeza, J.; Sánchez-Barba, L.F.; Rodríguez-Diéguez, A.; Castro-Osma, J.A.; Lara-Sánchez, A. Synthesis of Bio-Derived Cyclic Carbonates from Renewable Resources. ACS Sustain. Chem. Eng. 2019, 7, 20126–20138. [Google Scholar] [CrossRef]







![]() | ||||
| Entry | Catalyst | Time (h) | Conversion (%) 2 | TOF 3 |
| 1 | 1 | 1 | 93 | 93 |
| 2 | 2 | 1 | 90 | 90 |
| 3 | 3 | 1 | 91 | 91 |
| 4 | 4 | 1 | 90 | 90 |
| 5 | 5 | 1 | 78 | 78 |
| 6 | 6 | 1 | 48 | 48 |
| 7 | 7 | 1 | 69 | 69 |
| 8 | 1 | 2 | 100 (97) 4 | 50 |
| 9 5 | 1 | 2 | Traces | - |
| 10 6 | - | 2 | 20 | 10 |
| 11 7 | 1 | 2 | 10 | 5 |
| 12 8 | 1 | 2 | 100 | 50 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
