REFERENCES

1. Gao, W.; Liang, S.; Wang, R.; et al. Industrial carbon dioxide capture and utilization: state of the art and future challenges. Chem. Soc. Rev. 2020, 49, 8584-686.

2. Breyer, C.; Fasihi, M.; Bajamundi, C.; Creutzig, F. Direct air capture of CO2: a key technology for ambitious climate change mitigation. Joule 2019, 3, 2053-7.

3. Alcalde, J.; Flude, S.; Wilkinson, M.; et al. Estimating geological CO2 storage security to deliver on climate mitigation. Nat. Commun. 2018, 9, 2201.

4. Davis, S. J.; Caldeira, K.; Matthews, H. D. Future CO2 emissions and climate change from existing energy infrastructure. Science 2010, 329, 1330-3.

5. Wang, W.; Wang, S.; Ma, X.; Gong, J. Recent advances in catalytic hydrogenation of carbon dioxide. Chem. Soc. Rev. 2011, 40, 3703-27.

6. Xu, X.; Wei, Q.; Xi, Z.; et al. Research progress of metal-organic frameworks-based materials for CO2 capture and CO2-to-alcohols conversion. Coord. Chem. Rev. 2023, 495, 215393.

7. Song, K. S.; Fritz, P. W.; Coskun, A. Porous organic polymers for CO2 capture, separation and conversion. Chem. Soc. Rev. 2022, 51, 9831-52.

8. Kumar, A.; Bhardwaj, R.; Choudhury, J. Integrated CO2 capture and conversion to methanol leveraged by the transfer hydrogenation approach. ACS. Catal. 2023, 13, 927-33.

9. Siegel, R. E.; Pattanayak, S.; Berben, L. A. Reactive capture of CO2: opportunities and challenges. ACS. Catal. 2023, 13, 766-84.

10. Medinger, J.; Song, K. S.; Umubyeyi, P.; Coskun, A.; Lattuada, M. Magnetically guided synthesis of anisotropic porous carbons toward efficient CO2 capture and magnetic separation of oil. ACS. Appl. Mater. Interfaces. 2023, 15, 21394-402.

11. Wan, M.; Yang, Z.; Morgan, H.; et al. Enhanced CO2 reactive capture and conversion using aminothiolate ligand-metal interface. J. Am. Chem. Soc. 2023, 145, 26038-51.

12. Zhang, B.; Shi, J.; Chu, Z.; et al. Lysine-modulated synthesis of enzyme-embedded hydrogen-bonded organic frameworks for efficient carbon dioxide fixation. Chem. Synth. 2023, 3, 5.

13. Dongare, S.; Coskun, O. K.; Cagli, E.; et al. A bifunctional ionic liquid for capture and electrochemical conversion of CO2 to CO over silver. ACS. Catal. 2023, 13, 7812-21.

14. Yin, Y.; Kang, X.; Han, B. Two-dimensional materials: synthesis and applications in the electro-reduction of carbon dioxide. Chem. Synth. 2022, 2, 19.

15. Kar, S.; Goeppert, A.; Galvan, V.; Chowdhury, R.; Olah, J.; Prakash, G. K. S. A carbon-neutral CO2 capture, conversion, and utilization cycle with low-temperature regeneration of sodium hydroxide. J. Am. Chem. Soc. 2018, 140, 16873-6.

16. Di, J.; Hao, G.; Liu, G.; Zhou, J.; Jiang, W.; Liu, Z. Defective materials for CO2 photoreduction: from C1 to C2+ products. Coord. Chem. Rev. 2023, 482, 215057.

17. Zhang, Z.; Yang, Z.; Liu, L.; Wang, Y.; Kawi, S. Catalytic CO2 conversion to C1 chemicals over single-atom catalysts. Adv. Energy. Mater. 2023, 13, 2301852.

18. Trogadas, P.; Xu, L.; Coppens, M. O. From biomimicking to bioinspired design of electrocatalysts for CO2 reduction to C1 products. Angew. Chem. Int. Ed. Engl. 2024, 63, e202314446.

19. Yang, Z.; Chen, H.; Li, B.; et al. Topotactic synthesis of phosphabenzene-functionalized porous organic polymers: efficient ligands in CO2 conversion. Angew. Chem. Int. Ed. Engl. 2019, 58, 13763-7.

20. Luo, R.; Chen, Y.; He, Q.; et al. Metallosalen-based ionic porous polymers as bifunctional catalysts for the conversion of CO2 into valuable chemicals. ChemSusChem 2017, 10, 1526-33.

21. Zhong, H.; Su, Y.; Chen, X.; Li, X.; Wang, R. Imidazolium- and triazine-based porous organic polymers for heterogeneous catalytic conversion of CO2 into cyclic carbonates. ChemSusChem 2017, 10, 4855-63.

22. Luo, R.; Chen, M.; Zhou, F.; et al. Synthesis of metalloporphyrin-based porous organic polymers and their functionalization for conversion of CO2 into cyclic carbonates: recent advances, opportunities and challenges. J. Mater. Chem. A. 2021, 9, 25731-49.

23. Dai, Z.; Tang, Y.; Zhang, F.; et al. Combination of binary active sites into heterogeneous porous polymer catalysts for efficient transformation of CO2 under mild conditions. Chin. J. Catal. 2021, 42, 618-26.

24. Wan, Y. L.; Zhang, J.; Wang, L.; Lei, Y. Z.; Wen, L. L. Poly(ionic liquid)-coated hydroxy-functionalized carbon nanotube nanoarchitectures with boosted catalytic performance for carbon dioxide cycloaddition. J. Colloid. Interface. Sci. 2024, 653, 844-56.

25. Zhao, Y.; Zhu, S.; Liao, C.; et al. Cobalt-mediated switchable catalysis for the one-pot synthesis of cyclic polymers. Angew. Chem. Int. Ed. Engl. 2021, 60, 16974-9.

26. Liu, F.; Huang, K.; Wu, Q.; Dai, S. Solvent-free self-assembly to the synthesis of nitrogen-doped ordered mesoporous polymers for highly selective capture and conversion of CO2. Adv. Mater. 2017, 29, 1700445.

27. Luo, R.; Yang, Y.; Chen, K.; et al. Tailored covalent organic frameworks for simultaneously capturing and converting CO2 into cyclic carbonates. J. Mater. Chem. A. 2021, 9, 20941-56.

28. Huang, K.; Zhang, J.; Liu, F.; Dai, S. Synthesis of porous polymeric catalysts for the conversion of carbon dioxide. ACS. Catal. 2018, 8, 9079-102.

29. Liang, J.; Huang, Y.; Cao, R. Metal–organic frameworks and porous organic polymers for sustainable fixation of carbon dioxide into cyclic carbonates. Coord. Chem. Rev. 2019, 378, 32-65.

30. Han, W.; Ma, X.; Wang, J.; Leng, F.; Xie, C.; Jiang, H. L. Endowing porphyrinic metal-organic frameworks with high stability by a linker desymmetrization strategy. J. Am. Chem. Soc. 2023, 145, 9665-71.

31. Su, Y.; Yuan, G.; Hu, J.; et al. Recent progress in strategies for preparation of metal-organic frameworks and their hybrids with different dimensions. Chem. Synth. 2022, 3, 1.

32. Li, H.; Li, C.; Wang, Y.; et al. Selenium confined in ZIF-8 derived porous carbon@MWCNTs 3D networks: tailoring reaction kinetics for high performance lithium-selenium batteries. Chem. Synth. 2022, 2, 8.

33. Liu, L.; Wang, S. M.; Han, Z. B.; Ding, M.; Yuan, D. Q.; Jiang, H. L. Exceptionally robust in-based metal-organic framework for highly efficient carbon dioxide capture and conversion. Inorg. Chem. 2016, 55, 3558-65.

34. Feng, D.; Chung, W. C.; Wei, Z.; et al. Construction of ultrastable porphyrin Zr metal-organic frameworks through linker elimination. J. Am. Chem. Soc. 2013, 135, 17105-10.

35. Song, J.; Zhang, Z.; Hu, S.; Wu, T.; Jiang, T.; Han, B. MOF-5/n-Bu4NBr: an efficient catalyst system for the synthesis of cyclic carbonates from epoxides and CO2 under mild conditions. Green. Chem. 2009, 11, 1031.

36. Dai, Z.; Sun, Q.; Liu, X.; et al. Metalated porous porphyrin polymers as efficient heterogeneous catalysts for cycloaddition of epoxides with CO2 under ambient conditions. J. Catal. 2016, 338, 202-9.

37. Xie, Y.; Wang, T. T.; Liu, X. H.; Zou, K.; Deng, W. Q. Capture and conversion of CO2 at ambient conditions by a conjugated microporous polymer. Nat. Commun. 2013, 4, 1960.

38. Xie, Y.; Wang, T. T.; Yang, R. X.; Huang, N. Y.; Zou, K.; Deng, W. Q. Efficient fixation of CO2 by a zinc-coordinated conjugated microporous polymer. ChemSusChem 2014, 7, 2110-4.

39. Gao, W. Y.; Chen, Y.; Niu, Y.; et al. Crystal engineering of an nbo topology metal-organic framework for chemical fixation of CO2 under ambient conditions. Angew. Chem. Int. Ed. Engl. 2014, 53, 2615-9.

40. Zhi, Y.; Shao, P.; Feng, X.; et al. Covalent organic frameworks: efficient, metal-free, heterogeneous organocatalysts for chemical fixation of CO2 under mild conditions. J. Mater. Chem. A. 2018, 6, 374-82.

41. Li, H.; Feng, X.; Shao, P.; et al. Synthesis of covalent organic frameworks via in situ salen skeleton formation for catalytic applications. J. Mater. Chem. A. 2019, 7, 5482-92.

42. Zhou, W.; Deng, Q. W.; Ren, G. Q.; et al. Enhanced carbon dioxide conversion at ambient conditions via a pore enrichment effect. Nat. Commun. 2020, 11, 4481.

43. Sengupta, M.; Bag, A.; Ghosh, S.; Mondal, P.; Bordoloi, A.; Islam, S. M. CuxOy@COF: an efficient heterogeneous catalyst system for CO2 cycloadditions under ambient conditions. J. CO2. Util. 2019, 34, 533-42.

44. Sun, Q.; Aguila, B.; Perman, J.; Nguyen, N.; Ma, S. Flexibility matters: cooperative active sites in covalent organic framework and threaded ionic polymer. J. Am. Chem. Soc. 2016, 138, 15790-6.

45. Aguila, B.; Sun, Q.; Wang, X.; et al. Lower activation energy for catalytic reactions through host-guest cooperation within metal-organic frameworks. Angew. Chem. Int. Ed. Engl. 2018, 57, 10107-11.

46. Ding, M.; Jiang, H. Incorporation of imidazolium-based poly(ionic liquid)s into a metal–organic framework for CO2 capture and conversion. ACS. Catal. 2018, 8, 3194-201.

47. Sun, Q.; Ma, S.; Dai, Z.; Meng, X.; Xiao, F. A hierarchical porous ionic organic polymer as a new platform for heterogeneous phase transfer catalysis. J. Mater. Chem. A. 2015, 3, 23871-5.

48. Sun, Q.; Aguila, B.; Verma, G.; et al. Superhydrophobicity: constructing homogeneous catalysts into superhydrophobic porous frameworks to protect them from hydrolytic degradation. Chem 2016, 1, 628-39.

49. Dai, Z.; Bao, Y.; Yuan, J.; Yao, J.; Xiong, Y. Different functional groups modified porous organic polymers used for low concentration CO2 fixation. Chem. Commun. 2021, 57, 9732-5.

50. Sun, Q.; Xiao, F. Porous polymeric catalysts constructed from vinylated functionalities. Acc. Mater. Res. 2022, 3, 772-81.

51. Wang, X.; Dong, Q.; Xu, Z.; et al. Hierarchically nanoporous copolymer with built-in carbene-CO2 adducts as halogen-free heterogeneous organocatalyst towards cycloaddition of carbon dioxide into carbonates. Chem. Eng. J. 2021, 403, 126460.

52. Duval, A.; Avérous, L. Solvent- and halogen-free modification of biobased polyphenols to introduce vinyl groups: versatile aromatic building blocks for polymer synthesis. ChemSusChem 2017, 10, 1813-22.

53. Zhou, S.; Luo, X.; Zhang, Y.; et al. Post-cationic modification of a porphyrin-based conjugated microporous polymer for enhanced removal performance of bisphenol A. Chem. Commun. 2023, 59, 14399-402.

54. Zhang, P.; Wang, S.; Ma, S.; Xiao, F. S.; Sun, Q. Exploration of advanced porous organic polymers as a platform for biomimetic catalysis and molecular recognition. Chem. Commun. 2020, 56, 10631-41.

55. Sun, Q.; Song, Y.; Aguila, B.; Ivanov, A. S.; Bryantsev, V. S.; Ma, S. Spatial engineering direct cooperativity between binding sites for uranium sequestration. Adv. Sci. 2021, 8, 2001573.

56. Dai, Z.; Sun, Q.; Liu, X.; et al. A hierarchical bipyridine-constructed framework for highly efficient carbon dioxide capture and catalytic conversion. ChemSusChem 2017, 10, 1186-92.

57. Li, X.; Niu, X.; Fu, P.; et al. Macrocycle-on-COF photocatalyst constructed by in-situ linker exchange for efficient photocatalytic CO2 cycloaddition. Appl. Catal. B. Environ. Energy. 2024, 350, 123943.

58. Ma, D.; Song, Y.; Zhao, H.; et al. Ordered macro–microporous covalent organic frameworks as bifunctional catalysts for CO2 cycloaddition. ACS. Sustain. Chem. Eng. 2023, 11, 6183-90.

Chemical Synthesis
ISSN 2769-5247 (Online)

Portico

All published articles are preserved here permanently:

https://www.portico.org/publishers/oae/

Portico

All published articles are preserved here permanently:

https://www.portico.org/publishers/oae/