Volume 7 Issue 1
Feb.  2022
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Chongxiong Duan, Yi Yu, Han Hu. Recent progress on synthesis of ZIF-67-based materials and their application to heterogeneous catalysis. Green Energy&Environment, 2022, 7(1): 3-15. doi: 10.1016/j.gee.2020.12.023
Citation: Chongxiong Duan, Yi Yu, Han Hu. Recent progress on synthesis of ZIF-67-based materials and their application to heterogeneous catalysis. Green Energy&Environment, 2022, 7(1): 3-15. doi: 10.1016/j.gee.2020.12.023

Recent progress on synthesis of ZIF-67-based materials and their application to heterogeneous catalysis

doi: 10.1016/j.gee.2020.12.023
  • In recent years, an increasing amount of interest has been dedicated to the synthesis and application of ZIF-67-based materials due to their exceptionally high surface area, tunable porosity, and excellent thermal and chemical stabilities. This review summarizes the latest strategies of synthesizing ZIF-67-based materials by exploring the prominent examples. Then, the recent progress in the applications of ZIF-67-based materials in heterogeneous catalysis, including catalysis of the redox reactions, addition reactions, esterification reactions, Knoevenagel condensations, and hydrogenation-dehydrogenation reactions, has been elaborately discussed. Finally, we end this work by shedding some light on the large-scale industrial production of ZIF-67-based materials and their applications in the future.

     

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  • [1]
    Y.-X. Tan, F. Wang, J. Zhang, Chem. Soc. Rev. 47(2018) 2130-2144.
    [2]
    M. Ding, R.W. Flaig, H.-L. Jiang, O.M. Yaghi, Chem. Soc. Rev. 48(2019) 2783-2828.
    [3]
    A. Phan, C.J. Doonan, F.J. Uribe-Romo, C.B. Knobler, M. O'keeffe, O.M. Yaghi, Acc. Chem. Res. 43(2010) 58-67.
    [4]
    C. Duan, F. Li, J. Xiao, Z. Liu, C. Li, H. Xi, Sci. China Mater. 60(2017) 1205-1214.
    [5]
    Y. Pan, Y. Liu, G. Zeng, L. Zhao, Z. Lai, Chem. Commun. 47(2011) 2071-2073.
    [6]
    W.J. Rieter, K.M.L. Taylor, W. Lin, J. Am. Chem. Soc. 129(2007) 9852-9853.
    [7]
    M. Li, G. Yuan, Y. Zeng, H. Peng, Y. Yang, J. Liao, J. Yang, N. Liu, J. Mol. Liq. 324(2020) 114718.
    [8]
    H. Zhang, J. Huo, H. Yang, F. Li, C. Duan, H. Xi, J. Mater. Chem. A 7(2019) 1022-1029.
    [9]
    B. Wang, A.P. Côté, H. Furukawa, M. O'keeffe, O.M. Yaghi, Nature 453(2008) 207-211.
    [10]
    C. Adhikari, A. Das, A. Chakraborty, Mol. Pharm. 12(2015) 3158-3166.
    [11]
    W. Ma, Q. Jiang, P. Yu, L. Yang, L. Mao, Anal. Chem. 85(2013) 7550-7557.
    [12]
    C.G. Jones, V. Stavila, M.A. Conroy, P. Feng, B.V. Slaughter, C.E. Ashley, M.D. Allendorf, ACS Appl. Mater. Inter. 8(2016) 7623-7630.
    [13]
    C. Duan, Y. Yu, J. Xiao, Y. Li, P. Yang, F. Hu, H. Xi, Green Energy Environ. 6(2021) 33-49.
    [14]
    C. Duan, K. Liang, J. Lin, J. Li, L. Li, L. Kang, Y. Yi, H. Xi, Sci. China Mater. https://doi.org/10.1007/s40843-021-1910-2.
    [15]
    M.H. Yap, K.L. Fow, G.Z. Chen, Green Energy Environ. 2(2017) 218-245.
    [16]
    G. Zhong, D. Liu, J. Zhang, J. Mater. Chem. A 6(2018) 1887-1899.
    [17]
    C.X. Duan, Y. Yu, F.E. Li, Y. Wu, H.X. Xi, CrystEngComm 22(2020) 2675-2680.
    [18]
    R. Banerjee, A. Phan, B. Wang, C. Knobler, H. Furukawa, M. O'keeffe, O.M. Yaghi, Science 319(2008) 939-943.
    [19]
    H. Huang, J.-R. Li, K. Wang, T. Han, M. Tong, L. Li, Y. Xie, Q. Yang, D. Liu, C. Zhong, Nat. Commun. 6(2015) 8847.
    [20]
    L. Shi, T. Wang, H. Zhang, K. Chang, J. Ye, Adv. Funct. Mater. 25(2015) 5360-5367.
    [21]
    J. Qian, F. Sun, L. Qin, Mater. Lett. 82(2012) 220-223.
    [22]
    L. Zhang, A. Wu, M. Tian, Y. Xiao, X. Shi, H. Yan, C. Tian, H. Fu, Chem. Commun. 54(2018) 11088-11091.
    [23]
    X. Ma, Y.-X. Zhou, H. Liu, Y. Li, H.-L. Jiang, Chem. Commun. 52(2016) 7719-7722.
    [24]
    S. Dang, Q.-L. Zhu, Q. Xu, Nat. Rev. Mater. 3(2017) 17075.
    [25]
    X. Cao, C. Tan, M. Sindoro, H. Zhang, Chem. Soc. Rev. 46(2017) 2660-2677.
    [26]
    Y. Du, Y. Xu, W. Zhou, Y. Yu, X. Ma, F. Liu, J. Xu, Y. Zhu, Green Energy Environ. 6(2021) 703-714.
    [27]
    Y. Xue, P. Xiang, H. Wang, Y. Jiang, Y. Long, H. Lian, W. Shi, J. Mol. Liq. 296(2019) 111990.
    [28]
    L. Wang, H. Zhu, Y. Shi, Y. Ge, X. Feng, R. Liu, Y. Li, Y. Ma, L. Wang, Nanoscale 10(2018) 11384-11391.
    [29]
    S. Gao, Y. Han, M. Fan, Z. Li, K. Ge, X.-J. Liang, J. Zhang, Sci. China Mater. 63(2020) 2429-2434.
    [30]
    Y. Dou, J. Zhou, F. Yang, M.-J. Zhao, Z. Nie, J.-R. Li, J. Mater. Chem. A 4(2016) 12526-12534.
    [31]
    Y. Liu, K. Sun, J. Jiang, W. Zhou, Y. Shang, C. Du, B. Li, Green Energy Environ. 6(2021) 91-101.
    [32]
    A. Zhou, R.-M. Guo, J. Zhou, Y. Dou, Y. Chen, J.-R. Li, ACS Sustain. Chem. Eng. 6(2018) 2103-2111.
    [33]
    D. Yu, L. Ge, B. Wu, L. Wu, H. Wang, T. Xu, J. Mater. Chem. A 3(2015) 16688-16694.
    [34]
    C. Duan, F. Li, M. Yang, H. Zhang, Y. Wu, H. Xi, Ind. Eng. Chem. Res. 57(2018) 15385-15394.
    [35]
    E. Andres-Garcia, L. Oar-Arteta, J. Gascon, F. Kapteijn, Chem. Eng. J. 360(2019) 10-14.
    [36]
    Z. Wang, Y. Lu, Y. Yan, T.Y.P. Larissa, X. Zhang, D. Wuu, H. Zhang, Y. Yang, X. Wang, Nano Energy 30(2016) 368-378.
    [37]
    B. Pattengale, S. Yang, J. Ludwig, Z. Huang, X. Zhang, J. Huang, J. Am. Chem. Soc. 138(2016) 8072-8075.
    [38]
    S. Bhattacharjee, M.-S. Jang, H.-J. Kwon, W.-S. Ahn, Catal. Surv. Asia 18(2014) 101-127.
    [39]
    M. Eddaoudi, D.F. Sava, J.F. Eubank, K. Adil, V. Guillerm, Chem. Soc. Rev. 44(2015) 228-249.
    [40]
    Y. Zhao, J. Liu, M. Horn, N. Motta, M. Hu, Y. Li, Sci. China Mater. 61(2018) 159-184.
    [41]
    J. Yao, H. Wang, Chem. Soc. Rev. 43(2014) 4470-4493.
    [42]
    M.P. Jian, B. Liu, R.P. Liu, J.H. Qu, H.T. Wang, X.W. Zhang, RSC Adv. 5(2015) 48433-48441.
    [43]
    J. Ethiraj, S. Palla, H. Reinsch, Microporous Mesoporous Mater. 294(2020) 109867.
    [44]
    J.N. Qin, S.B. Wang, X.C. Wang, Appl. Catal. B Environ. 209(2017) 476-482.
    [45]
    L. Wang, B. Wen, X.Y. Bai, C. Liu, H.B. Yang, J. Colloid Interface Sci. 540(2019) 30-38.
    [46]
    C.X. Duan, Y. Yu, P.F. Yang, X.L. Zhang, F.E. Li, L.B. Li, H.X. Xi, Ind. Eng. Chem. Res. 59(2020) 774-782.
    [47]
    C. Duan, Y. Yu, J. Xiao, X. Zhang, L. Li, P. Yang, J. Wu, H. Xi, Sci. China Mater. 63(2020) 667-685.
    [48]
    R.R. Kuruppathparambil, T. Jose, R. Babu, G.Y. Hwang, A.C. Kathalikkattil, D.W. Kim, D.W. Park, Appl. Catal. B Environ. 182(2016) 562-569.
    [49]
    J.C. Zhang, T.C. Zhang, D.B. Yu, K.S. Xiao, Y. Hong, CrystEngComm 17(2015) 8212-8215.
    [50]
    C. Avci, J. Arinez-Soriano, A. Carne-Sanchez, V. Guillerm, C. Carbonell, I. Imaz, D. Maspoch, Angew. Chem. Int. Ed. 54(2015) 14417-14421.
    [51]
    D. Bradshaw, S. El-Hankari, L. Lupica-Spagnolo, Chem. Soc. Rev. 43(2014) 5431-5443.
    [52]
    C. Duan, Y. Zhang, J. Li, L. Kang, Y. Xie, W. Qiao, C. Zhu, H. Luo, Nanomaterials 10(2020) 1539.
    [53]
    P. Sarawade, H. Tan, V. Polshettiwar, ACS Sustain. Chem. Eng. 1(2013) 66-74.
    [54]
    S.H. Hsu, C.T. Li, H.T. Chien, R.R. Salunkhe, N. Suzuki, Y. Yamauchi, K.C. Ho, K.C.W. Wu, Sci. Rep. 4(2014) 6983.
    [55]
    W.Z. Li, K.K. Wang, X.T. Yang, F.Q. Zhan, Y.Q. Wang, M. Liu, X.Q. Qiu, J. Li, J. Zhan, Q.H. Li, Y. Liu, Chem. Eng. J. 379(2020) 122256.
    [56]
    V. Guillerm, D. Kim, J.F. Eubank, R. Luebke, X. Liu, K. Adil, M.S. Lah, M. Eddaoudi, Chem. Soc. Rev. 43(2014) 6141-6172.
    [57]
    C.X. Duan, J.H. Huo, F. Li, M.H. Yang, H.X. Xi, J. Mater. Sci. 53(2018) 16276-16287.
    [58]
    H. Zhang, J.H. Huo, H.W. Yang, F. Li, C.X. Duan, H.X. Xi, J. Mater. Chem. A 7(2019) 1022-1029.
    [59]
    C.X. Duan, F. Li, M.H. Yang, H. Zhang, Y. Wu, H.X. Xi, Ind. Eng. Chem. Res. 57(2018) 15385-15394.
    [60]
    K. Sumida, K. Liang, J. Reboul, I.A. Ibarra, S. Furukawa, P. Falcaro, Chem. Mater. 29(2017) 2626-2645.
    [61]
    A. Garcia Marquez, P. Horcajada, D. Grosso, G. Ferey, C. Serre, C. Sanchez, C. Boissiere, Chem. Commun. 49(2013) 3848-3850.
    [62]
    Q.X. Yang, R. Lu, S.S. Ren, C.T. Chen, Z.J. Chen, X.Y. Yang, Chem. Eng. J. 348(2018) 202-211.
    [63]
    L.L. Xu, Y. Xiong, B.K. Dang, Z.N. Ye, C.D. Jin, Q.F. Sun, X.H. Yu, Mater. Des. 182(2019) 108006.
    [64]
    T. Chalati, P. Horcajada, R. Gref, P. Couvreur, C. Serre, J. Mater. Chem. 21(2011) 2220-2227.
    [65]
    R. Babu, R. Roshan, A.C. Kathalikkattil, D.W. Kim, D.W. Park, ACS Appl. Mater. Inter. 8(2016) 33723-33731.
    [66]
    N.M. Mahmoodi, M. Taghizadeh, A. Taghizadeh, J. Abdi, B. Hayati, A.A. Shekarchi, Appl. Surf. Sci. 480(2019) 288-299.
    [67]
    N.T.T. Tu, P.C. Sy, T.V. Thien, T.T.T. Toan, N.H. Phong, H.T. Long, D.Q. Khieu, J. Mater. Sci. 54(2019) 11654-11670.
    [68]
    F. Hillman, J.M. Zimmerman, S.M. Paek, M.R.A. Hamid, W.T. Lim, H.K. Jeong, J. Mater. Chem. A 5(2017) 6090-6099.
    [69]
    P.A. Julien, C. Mottillo, T. Friščić, Green Chem. 19(2017) 2729-2747.
    [70]
    C. Mottillo, Y.N. Lu, M.H. Pham, M.J. Cliffe, T.O. Do, T. Friscic, Green Chem. 15(2013) 2121-2131.
    [71]
    M. Krishtab, I. Stassen, T. Stassin, A.J. Cruz, O.O. Okudur, S. Armini, C. Wilson, S. de Gendt, R. Ameloot, Nat. Commun. 10(2019) 3729.
    [72]
    I. Stassen, M. Styles, G. Grenci, H. van Gorp, W. Vanderlinden, S. de Feyter, P. Falcaro, D.D. Vos, P. Vereecken, R. Ameloot, Nat. Mater. 15(2016) 304-310.
    [73]
    X.D. Du, C.C. Wang, J.G. Liu, X.D. Zhao, J. Zhong, Y.X. Li, J. Li, P. Wang, J. Colloid Interface Sci. 506(2017) 437-441.
    [74]
    W.Z. Sun, X.S. Zhai, L. Zhao, Chem. Eng. J. 289(2016) 59-64.
    [75]
    A. Dhakshinamoorthy, M. Alvaro, H. Garcia, Chem. Commun. 48(2012) 11275-11288.
    [76]
    G. Liu, B. Wang, L. Wang, W. Wei, Y. Quan, C. Wang, W. Zhu, H. Li, J. Xia, Green Energy Environ. https://doi.org/10.1016/j.gee.2020.10.007.
    [77]
    Z. Wang, S.M. Cohen, Chem. Soc. Rev. 38(2009) 1315-1329.
    [78]
    L. Chen, H.-F. Wang, C. Li, Q. Xu, Chem. Sci. 11(2020) 5369-5403.
    [79]
    Y.-Z. Chen, R. Zhang, L. Jiao, H.-L. Jiang, Coord. Chem. Rev. 362(2018) 1-23.
    [80]
    B. Xi, Y.C. Tan, H.C. Zeng, Chem. Mater. 28(2016) 326-336.
    [81]
    J. Qin, S. Wang, X. Wang, Appl. Catal. B Environ. 209(2017) 476-482.
    [82]
    Y. Wang, P. Hou, Z. Wang, P. Kang, ChemPhysChem 18(2017) 3142-3147.
    [83]
    D. Sun, Y. Fu, W. Liu, L. Ye, D. Wang, L. Yang, X. Fu, Z. Li, Chem. Eur. J. 19(2013) 14279-14285.
    [84]
    Q. Wang, Y. Zhang, H. Lin, J. Zhu, Chem. Eur. J. 25(2019) 14026-14035.
    [85]
    C. Bai, A. Li, X. Yao, H. Liu, Y. Li, Green Chem. 18(2016) 1061-1069.
    [86]
    H. Zhang, J. Wei, J. Dong, G. Liu, L. Shi, P. An, G. Zhao, J. Kong, X. Wang, X. Meng, J. Zhang, J. Ye, Angew. Chem. Int. Ed. 55(2016) 14310-14314.
    [87]
    M. Wang, J. Liu, C. Guo, X. Gao, C. Gong, Y. Wang, B. Liu, X. Li, G.G. Gurzadyan, L. Sun, J. Mater. Chem. A 6(2018) 4768-4775.
    [88]
    L. Zhang, H. Yi, J. Wang, A. Lei, Green Chem. 18(2016) 5122-5126.
    [89]
    C. Guo, Y. Zhang, X. Nan, C. Feng, Y. Guo, J. Wang, Mol. Catal. 440(2017) 168-174.
    [90]
    H. Li, H. Ma, X. Wang, J. Gao, C. Chen, S. Shi, M. Qu, N. Feng, J. Xu, J. Energy Chem. 23(2014) 742-746.
    [91]
    C. Duan, Y. Yu, J. Li, L. Li, B. Huang, D. Chen, H. Xi, Sci. China Mater. 64(2021) 1305-1319.
    [92]
    B. Mousavi, S. Chaemchuen, B. Moosavi, Z. Luo, N. Gholampour, F. Verpoort, New J. Chem. 40(2016) 5170-5176.
    [93]
    C.M. Miralda, E.E. Macias, M. Zhu, P. Ratnasamy, M.A. Carreon, ACS Catal. 2(2012) 180-183.
    [94]
    K. Zhou, B. Mousavi, Z. Luo, S. Phatanasri, S. Chaemchuen, F. Verpoort, J. Mater. Chem. A 5(2017) 952-957.
    [95]
    C.E. Goncalves, L.O. Laier, A.L. Cardoso, M.J.D. Silva, Fuel Process. Technol. 102(2012) 46-52.
    [96]
    L. Yang, L. Yu, M. Sun, C. Gao, Catal. Commun. 54(2014) 86-90.
    [97]
    G.M. Zhao, J.H. Shi, G. Liu, Y. Liu, Z.L. Wang, W.X. Zhang, M.J. Jia, J. Mol. Catal. Chem. 327(2010) 32-37.
    [98]
    W. Kroutil, Chembiochem 6(2005) 1701.
    [99]
    S. Rafiei, S. Tangestaninejad, P. Horcajada, M. Moghadam, V. Mirkhani, I. Mohammadpoor-Baltork, R. Kardanpour, F. Zadehahmadi, Chem. Eng. J. 334(2018) 1233-1241.
    [100]
    W. Zhong, H.L. Liu, C.H. Bai, S.J. Liao, Y.W. Li, ACS Catal. 5(2015) 1850-1856.
    [101]
    L. Zhu, X.Q. Liu, H.L. Jiang, L.B. Sun, Chem. Rev. 117(2017) 8129-8176.
    [102]
    U.P.N. Tran, K.K.A. Le, N.T.S. Phan, ACS Catal. 1(2011) 120-127.
    [103]
    V.D. Nguyen, C.K. Nguyen, K.N. Tran, T.N. Tu, T.T. Nguyen, H.V. Dang, T. Truong, N.T.S. Phan, Appl. Catal. A-Gen. 555(2018) 20-26.
    [104]
    A. Zanon, S. Chaemchuen, F. Verpoort, Catal. Lett. 147(2017) 2410-2420.
    [105]
    S. Abednatanzi, P. Gohari Derakhshandeh, H. Depauw, F.-X. Coudert, H. Vrielinck, P. van der Voort, K. Leus, Chem. Soc. Rev. 48(2019) 2535-2565.
    [106]
    J. Tang, R.R. Salunkhe, J. Liu, N.L. Torad, M. Imura, S. Furukawa, Y. Yamauchi, J. Am. Chem. Soc. 137(2015) 1572.
    [107]
    M. Bosch, M. Zhang, H.-C. Zhou, Adv. Chem. 2014(2014) 182327.
    [108]
    D.D. Tuan, K.Y.A. Lin, J. Taiwan Inst. Chem. Eng. 91(2018) 274-280.
    [109]
    K. Shen, L. Chen, J.L. Long, W. Zhong, Y.W. Li, ACS Catal. 5(2015) 5264-5271.
    [110]
    J. Yang, F.J. Zhang, H.Y. Lu, X. Hong, H.L. Jiang, Y. Wu, Y.D. Li, Angew. Chem. Int. Ed. 54(2015) 10889-10893.
    [111]
    L. Zhang, A.P. Wu, M. Tian, Y.L. Xiao, X. Shi, H.J. Yan, C.G. Tian, H.G. Fu, Chem. Commun. 54(2018) 5.
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