Progress in Porous Organic Polymer for Chemical Fixation of Carnbon Dioxide

  • Xu Liao ,
  • Zeyu Wang ,
  • Wufei Tang ,
  • Jinqing Lin
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  • a College of Chemistry and Bioengineering, Hunan University of Science and Engineering, Yongzhou, Hunan 425199
    b College of Materials Science and Engineering, Huaqiao University, Xiamen, Fujian 361021

Received date: 2022-12-20

  Revised date: 2023-03-28

  Online published: 2023-04-23

Supported by

The National Natural Science Foundation of China(21246008); The National Natural Science Foundation of China(21803021); The Natural Science Foundation of Fujian Province(2020J01065); The Hunan Provincial Natural Science Foundation(2023JJ40298)

Abstract

Porous organic polymers (POPs) are a new class of porous materials that connect organic structural units by covalent bonds, having the features of various synthetic methods, adjustable pore properties, stable pore structures, low relative density and large specific surface areas. POPs have been applied in fields of gas adsorptions, separations and storage, optoelectronic devices, sensing and heterogeneous catalysis, showing the important application value. Carbon capture, utilization and storage (CCUS) technology is the unique way to significantly reduce carbon dioxide (CO2) emissions from fossil fuels, and catalytic conversion of CO2 into valuable fuels or industrial value-added products is an effective and potential strategy to solve the utilization of renewable energy and realize the development of green chemistry. In this review, the synthesis and properties of covalent-organic frameworks (COFs), covalent triazine frameworks (CTFs), hypercrosslinked polymers (HCPs), conjugated microporous polymers (CMPs) and polymer of intrinsic microporosity (PIMs) and their progress of chemical fixation of CO2 in recent years, is reviewed, and the application prospects of POPs in CO2 catalysis are prospected.

Cite this article

Xu Liao , Zeyu Wang , Wufei Tang , Jinqing Lin . Progress in Porous Organic Polymer for Chemical Fixation of Carnbon Dioxide[J]. Chinese Journal of Organic Chemistry, 2023 , 43(8) : 2699 -2710 . DOI: 10.6023/cjoc202212026

References

[1]
Tortajada, A.; Julia-Hernandez, F.; Borjesson, M.; Moragas, T.; Martin, R. Angew. Chem., Int. Ed. 2018, 57, 15948.
[2]
Tyne, R. L.; Barry, P. H.; Lawson, M.; Byrne, D. J.; Warr, O.; Xie, H.; Hillegonds, D. J.; Formolo, M.; Summers, Z. M.; Skinner, B.; Eiler, J. M.; Ballentine, C. J. Nature 2021, 600, 670.
[3]
Li, M.; Yang, K.; Abdinejad, M.; Zhao, C.; Burdyny, T. Nanoscale 2022, 14, 11892.
[4]
Zhou, C.; Li, M.; Yu, J.; Sun, S.; Cheng, J. Chin. J. Org. Chem. 2020, 40, 2221. (in Chinese)
[4]
( 周聪, 李渺, 于金涛, 孙松, 成江, 有机化学, 2020, 40, 2221.)
[5]
Du, J.; Huang, O.; Tan, B. Chem. Asian J. 2021, 16, 3833.
[6]
Liu, X.; Wang, C.; Chen, Y.; Qin, Q.; Li, Y.; He, H. J. Environ Sci. 2023, 125, 811.
[7]
Desgagnes, A.; Iliuta, M. C. Chem. Eng. J. 2023, 454, 140214.
[8]
Thubsuang, U.; Manmuanpom, N.; Chokaksornsan, N.; Sommut, C.; Singhawat, K.; Payaka, A.; Wongkasemjit, S.; Chaisuwan, T. Appl. Surf. Sci. 2023, 607, 155120.
[9]
Wang, H.; Chuai, H.; Chen, X.; Lin, J.; Zhang, S.; Ma, X. ACS Appl. Mater. Interfaces 2023, 15, 1376.
[10]
Liang, J.; Chen, R. P.; Wang, X. Y.; Liu, T. T.; Wang, X. S.; Huang, Y. B.; Cao, R. Chem. Sci. 2017, 8, 1570.
[11]
Wu, Q. J.; Liang, J.; Huang, Y. B.; Cao, R. Acc. Chem. Res. 2022, 55, 2978.
[12]
He, C.; Liang, J.; Zou, Y. H.; Yi, J. D.; Huang, Y. B.; Cao, R. Natl. Sci. Rev. 2022, 9, nwab157.
[13]
Liang, J.; Wu, Q.; Huang, Y. B.; Cao, R. EnergyChem 2021, 3, 100064.
[14]
Ebadi A, A.; Sanaeepur, H.; Luque, R.; Garcia, H.; Chen, B. Chem. Soc. Rev. 2022, 51, 7427.
[15]
Lu, M.; Zhang, M.; Liu, J.; Chen, Y.; Liao, J. P.; Yang, M. Y.; Cai, Y. P.; Li, S. L.; Lan, Y. Q. Angew. Chem., Int. Ed. 2022, 61, e202200003.
[16]
Yang, Y. L.; Wang, Y. R.; Gao, G. K.; Liu, M.; Miao, C.; Li, L. Y.; Cheng, W.; Zhao, Z. Y.; Chen, Y.; Xin, Z.; Li, S. L.; Li, D. S.; Lan, Y. Q. Chin. Chem. Lett. 2022, 33, 1439.
[17]
Cai, K.; Liu, P.; Chen, Z.; Chen, P.; Liu, F.; Zhao, T.; Tao, D. J. Chem. Eng. J. 2023, 451, 138946.
[18]
Wang, J.; Wang, L.; Wang, Y.; Zhang, D.; Xiao, Q.; Huang, J.; Liu, Y. N. Chem. Eng. J. 2022, 42, 91.
[19]
Yang, D. H.; Tao, Y.; Ding, X.; Han, B. H. Chem. Soc. Rev. 2022, 51, 761.
[20]
He, J.; Wang, X.; Jin, S.; Liu, Z. Q.; Zhu, M. Chin. J. Catal. 2022, 43, 1306.
[21]
Song, K. S.; Fritz, P. W.; Coskun, A. Chem. Soc. Rev. 2022, 51, 9831.
[22]
Xu, Z. Y.; Luo, Y.; Wang, H.; Zhang, D. W.; Li, Z. T. Chin. J. Org. Chem. 2020, 40, 3777. (in Chinese)
[22]
( 徐子悦, 罗驿, 王辉, 张丹维, 黎占亭, 有机化学, 2020, 40, 3777.)
[23]
Lee, J. S. M.; Cooper, A. I. Chem. Rev. 2020, 120, 2171.
[24]
Cote, A. P.; Yaghi, O. M. Science 2005, 310, 1166.
[25]
Guo, L.; Zhang, J.; Huang, Q.; Zhou, W.; Jin, S. Chin. Chem. Lett. 2022, 33, 2856.
[26]
Tan, L. X.; Tan, B. E. Chem. Soc. Rev. 2017, 46, 3322.
[27]
Kuhn, P.; Antonietti, M.; Thomas, A. Angew. Chem., Int. Ed. 2008, 47, 3450.
[28]
Jiang, J. X.; Su, F.; Trewin, A.; Wood, C. D.; Campbell, N. L.; Niu, H.; Dickinson, C.; Ganin, A. Y.; Rosseinsky, M. J.; Khimyak, Y. Z.; Cooper, A. I. Angew. Chem., Int. Ed. 2007, 46, 8574.
[29]
Ben, T.; Ren, H.; Ma, S.; Cao, D.; Lan, J.; Jing, X.; Wang, W.; Xu, J.; Deng, F.; Simmons, J. M.; Qiu, S. L.; Zhu, G. S. Angew. Chem., Int. Ed. 2009, 48, 9457.
[30]
Chen, J.; Longo, M.; Fuoco, A.; Esposito, E.; Monteleone, M.; Comesana, G. B.; Carolus, J. J.; McKeown, N. B. Angew. Chem., Int. Ed. 2023, 62, e202215250.
[31]
Guan, Q.; Zhou, L. L.; Dong, Y. B. J. Am. Chem. Soc. 2023, 145, 1475.
[32]
Geng, K.; He, T.; Liu, R.; Dalapati, S.; Tan, K. T.; Li, Z.; Tao, S.; Gong, Y.; Jiang, Q.; Jiang, D. Chem. Rev. 2020, 120, 8814.
[33]
Wang, Z.; Zhang, S.; Chenm, Y. ; Zhang, Z.; Ma, S. Chem. Soc. Rev. 2020, 49, 708.
[34]
Asokan, K.; Patil, M. K.; Mukherjee, S. P.; Sukumaran, S. B.; Nandakumar, T. Chem. Asian J. 2022, 17, e202201012.
[35]
Yan, X.; Yang, Y.; Li, G.; Zhang, J.; He, Y.; Wang, R.; Lin, Z.; Cai, Z. Chin. Chem. Lett. 2023, 34, 107201.
[36]
Fu, Q.; Zhang, T.; Sun, X.; Zhang, S.; Waterhouse, G. I. N.; Sun, C.; Li, H.; Ai, S. Chem. Eng. J. 2023, 454, 140154.
[37]
Zhang, Z.; Kang, C.; Peh, S. B.; Shi, D.; Yang, F.; Liu, Q.; Zhao, D. J. Am. Chem. Soc. 2022, 144, 14992.
[38]
Wang, C.; Tang, J.; Chen, Z.; Jin, Y.; Liu, J.; Xu, H.; Wang, H.; He, X.; Zhang, Q. Energy Stor. Mater. 2023, 55, 498.
[39]
Cui, B.; Fu, G. Nanoscale 2022, 14, 1679.
[40]
Yao, S.; Yang, Y.; Liang, Z.; Chen, J.; Ding, J.; Li, F.; Liu, J.; Xi, L.; Zhu, M.; Liu, J. Adv. Funct. Mater. https://doi.org/10.1002/adfm. 202212466.
[41]
Yu, G.; Wang, C. Chin. J. Org. Chem. 2020, 40, 1437. (in Chinese)
[41]
( 于歌, 汪成, 有机化学, 2020, 40, 1437.)
[42]
Yue, J. Y.; Song, L.-P.; Wang, Y. T.; Yang, P.; Ma, Y.; Tang, B. Anal. Chem. 2022, 94, 14419.
[43]
Chen, Y.; Chen, Q.; Zhang, Z. Chin. J. Org. Chem. 2021, 41, 3826. (in Chinese)
[43]
( 陈育萱, 陈奇, 张占辉, 有机化学, 2021, 41, 3826.)
[44]
Wu, C.; Li, X.; Shao, M.; Kan, J.; Wang, G.; Geng, Y.; Dong, Y. B. Chin. Chem. Lett. 2022, 33, 4559.
[45]
Zhang, Y.; Hu, H.; Ju, J.; Yan, Q.; Arumugam, V.; Jing, X.; Cai, H.; Gao, Y. Chin. J. Catal. 2020, 41, 485.
[46]
Li, W. Y.; Wan, J. J.; Kan, J. L.; Wang, B.; Song, T.; Guan, Q.; Zhou, L. L.; Li, Y. A.; Dong, Y. B. Chem. Sci. 2023, 14, 1453.
[47]
Saptal, V.; Shinde, D. B.; Banerjee, R.; Bhanage, B. M. Catal. Sci. Technol. 2016, 6, 6152.
[48]
Yin, M.; Wang, L.; Tang, S. ACS Appl. Mater. Interfaces 2022, 14, 55674.
[49]
Khatun, R.; Biswasa, S.; Biswas, I. H.; Riyajuddin, S.; Haque, N.; Ghosh, K.; Islam, S. M. J. CO2 Util. 2020, 40, 101180.
[50]
Cao, Q.; Zhang, L. L.; Zhou, C.; He, J. H.; Marcomini, A.; Lu, J. M. Appl. Catal. B. 2021, 294, 120238.
[51]
He, C.; Si, D. H.; Huang, Y. B.; Cao, R. Angew. Chem., Int. Ed. 2022, 61, e202207478.
[52]
Mu, Z. J.; Ding, X. S.; Chen, Z. Y.; Han, B. H. ACS Appl. Mater. Interfaces 2018, 10, 41350.
[53]
Sarkar, P.; Hazra, A.; Riyajuddin, C. S.; Biswas, S.; Ghosh, K.; Islam, S. M. New J. Chem. 2020, 44, 744.
[54]
Chowdhury, A. H.; Chowdhury, I. H.; Biswas, S.; Islam, S. M. Mol. Catal. 2020, 493, 111050.
[55]
Ghosh, S.; Molla, R. A.; Kayal, U.; Bhaumik, A.; Islam, S. M. Dalton. Trans. 2019, 48, 4657.
[56]
Chakraborty, D.; Shekhar, P.; Singh, H. D.; Kushwaha, R.; Vinod, C. P.; Vaidhyanathan, R. Chem. Asian J. 2019, 14, 4767.
[57]
Li, Y.; Dong, Y.; Kan, J. L.; Wu, X.; Dong, Y. B. Org. Lett. 2020, 22, 7363.
[58]
Zhang, L.; Bu, R.; Liu, X.-Y.; Mu, P.-F.; Gao, E. Q. Green Chem. 2021, 23, 7620.
[59]
Toland, W. G. US US3060179, 1962.
[60]
Miller, G. H. US 3775380, 1973.
[61]
Ren, S.; Bojdys, M. J.; Dawson, R.; Laybourn, A.; Khimyak, Y. Z.; Adams, D. J.; Cooper, A. I. Adv. Mater. 2012, 24, 2357.
[62]
Meier, C. B.; Sprick, R. S.; Monti, A.; Guiglion, P.; Lee, J. M.; Zwijnenburg, M. A.; Cooper, A. I. Polymer 2017, 126, 283.
[63]
Wang, K. W.; Yang, L. M.; Wang, X.; Guo, L. P.; Cheng, G.; Zhang, C.; Jin, S. B.; Tan, B.; Cooper, A. Angew. Chem., Int. Ed. 2017, 56, 14149.
[64]
Zhao, Y.; Huang, H. L.; Zhu, H.; Zhong, C. Microporous Mesoporous Mater. 2022, 329, 111526.
[65]
Dai, W.; Li, Q.; Long, J.; Mao, P.; Xu, Y.; Yang, L.; Zou, J.; Luo, X. J. CO2 Util. 2022, 62, 102101.
[66]
Roeser, J.; Kailasam, K.; Thomas, A. ChemSusChem 2012, 5, 1793.
[67]
Lan, X. W.; Du, C.; Cao, L. L.; She, T. T.; Li, Y. M.; Bai, G. Y. ACS Appl. Mater. Interfaces 2018, 10, 38953.
[68]
Lan, X. W.; Li, Y. M.; Du, C.; She, T. T.; Li, Q.; Bai, G. Y. Chem. Eur. J. 2019, 25, 8560.
[69]
Liu, J.; Zhang, X.; Wen, B.; Li, Y.; Wu, J.; Wang, Z.; Wu, T.; Zhao, R.; Yang, S. Catal. Sci. Technol. 2021, 11, 3119.
[70]
Singh, G.; Nagaraja, C. M. J. CO2 Util. 2022, 63, 102132.
[71]
Tan, L. X.; Tan, B. E. Acta Chim. Sinica 2015, 73, 530. (in Chinese)
[71]
( 谭良骁, 谭必恩, 化学学报, 2015, 73, 530.)
[72]
Davankov, V. A.; Rogozhin, S. V.; Tsyurupa, M. P. US 3729457, 1971
[72]
[Chem. Abstr. 1971, 75, 6841.]
[73]
Liao, X.; Pei, B.; Ma, R.; Kong, L.; Gao, X.; He, J.; Luo, X.; Lin, J. Q. Catalysts 2022, 12, 62.
[74]
Liao, X.; Xiang, X.; Wang, Z.; Ma, R.; Kong, L.; Gao, X.; He, J.; Hou, W.; Peng, C.; Lin, J. Q. Sustainable Energy Fuels 2022, 6, 2846.
[75]
Ren, Q.; Chen, Y.; Qiu, Y.; Tao, L.; Ji, H. Catal. Lett. 2021, 151, 2919.
[76]
Molla, R. A.; Bhanja, P.; Ghosh, K.; Islam, S. S.; Bhaumik, A.; Islam, S. M. ChemCatChem 2017, 9, 1939.
[77]
Ghosh, S.; Ghosh, A.; Riyajuddin, S.; Sarkar, S.; Chowdhury, A. H.; Ghosh, K.; Islam, S. K. ChemCatChem 2020, 12, 1055.
[78]
Xie, Y.; Wang, T. T.; Liu, X. H.; Zou, K.; Deng, W. Q. Nat. Commun. 2013, 4, 1960.
[79]
Xie, Y.; Wang, T. T.; Liu, X. H.; Zou, K.; Deng, W. Q. ChemSusChem 2014, 7, 2110.
[80]
Zhou, F.; Deng, Q.; Huang, N.; Zhou, W.; Deng, W. ChemistrySelect 2020, 5, 10516.
[81]
Zhang, X.; Qiu, B.; Zou, Y.; Wang, S.; Mai, W.; Cao, Y.; Wang, Y.; Chen, J.; Li, T. Microporous Mesoporous Mater. 2021, 319, 110758.
[82]
Zhang, X.; Wang, J.; Bian, Y.; Lv, H.; Qiu, B.; Zhang, Y.; Qin, R.; Zhu, D.; Zhang, S.; Li, D.; Wang, S.; Mai, W.; Li, Y.; Li, T. J. CO2 Util. 2022, 58, 101924.
[83]
Ma, D. X.; Liu, K.; Li, J. X.; Shi, Z. ACS Sustainable Chem. Eng. 2018, 6, 15050.
[84]
Pan, Y.; Zhai, X. F.; Yin, J.; Zhang, T. Q.; Ma, L. J.; Zhou, Y.; Zhang, Y. F.; Meng, J. Q. ChemSusChem 2019, 12, 2231.
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