Progress in Seed-assisted Synthesis of (Silico)Aluminophosphate Molecular Sieves

Xiaosi Zhang , Miao Yang , Peng Tian , Zhongmin Liu

Chemical Research in Chinese Universities ›› 2022, Vol. 38 ›› Issue (1) : 1 -8.

PDF
Chemical Research in Chinese Universities ›› 2022, Vol. 38 ›› Issue (1) : 1 -8. DOI: 10.1007/s40242-022-1407-4
Review

Progress in Seed-assisted Synthesis of (Silico)Aluminophosphate Molecular Sieves

Author information +
History +
PDF

Abstract

Aluminophosphate(AlPO) and silicoaluminophosphate(SAPO) molecular sieves are an important class of open-framework crystalline materials with wide applications thanks to their molecular-scale selectivity, moderate/strong acidity and excellent (hydro)thermal stability. In recent decades, the manufacturing of new microporous solids with ordered structures has been widely investigated and many effective methods have been developed, which enriches the material types and broadens their applications beyond the traditional use as catalysts and adsorbents. However, the development on the synthesis of AlPO/SAPO molecular sieves is still insufficient and lags behind the needs of applications. Herein, we summarize the work on the seed-assisted synthesis of AlPO/SAPO molecular sieves compared with the zeolite synthetic system, aiming to prompt the synthesis and application of AlPO/SAPO molecular sieves.

Keywords

Seed-assisted synthesis / AlPO/SAPO molecular sieve / Crystallization mechanism

Cite this article

Download citation ▾
Xiaosi Zhang, Miao Yang, Peng Tian, Zhongmin Liu. Progress in Seed-assisted Synthesis of (Silico)Aluminophosphate Molecular Sieves. Chemical Research in Chinese Universities, 2022, 38(1): 1-8 DOI:10.1007/s40242-022-1407-4

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Wilson S T, Lok B M, Messina C A, Cannan T R, Flanigen E M. J. Am. Chem. Soc., 1982, 104: 1146.

[2]

Lok B M, Messina C A, Patton R L, Gajek R T, Cannan T R, Flanigen E M. J. Am. Chem. Soc., 1984, 106: 6092.

[3]

Davis M E. Nature, 2002, 417: 813.

[4]

Cejka J, Corma A, Zones S. Zeolites and Catalysis, 2010, Weinheim: Wiley-VCH Verlag GmbH&Co.KGaA.

[5]

Li Y, Li L, Yu J H. Chem, 2017, 3: 928.

[6]

Li Y, Yu J H. Nat. Rev. Mater., 2021, 6: 1156.

[7]

Carreon M L, Li S G, Carreon M A. Chem. Commun., 2012, 48: 2310.

[8]

Fischer M. Sustainable Energy Fuels, 2018, 2: 1749.

[9]

Krajnc A, Varlec J, Mazaj M, Ristic A, Logar N Z, Mali G. Adv. Energy Mater., 2017, 7: 1601815.

[10]

Tian P, Wei Y X, Ye M, Liu Z M. ACS Catal., 2015, 5: 1922.

[11]

Yang M, Fan D, Wei Y X, Tian P, Liu Z M. Adv. Mater., 2019, 31: 1902181.

[12]

Fan Y, Xiao H, Shi G, Liu H Y, Bao X J. J. Catal., 2012, 285: 251.

[13]

Guo L, Bao X J, Fan Y, Shi G, Liu H Y, Bai D J. J. Catal., 2012, 294: 161.

[14]

Liu X N, Yan N N, Wang L, Ma C, Guo P, Tian P, Cao G, Liu Z M. Microporous Mesoporous Mater., 2019, 280: 105.

[15]

http://asia.iza-structure.org/IZA-SC/ftc-table.php

[16]

Parnham E R, Morris R E. Acc. Chem. Res., 2007, 40: 1005.

[17]

Wei Y, Tian Z J, Gies H, Xu R S, Ma H J, Pei R Y, Zhang W P, Xu Y P, Wang L, Li K D, Wang B C, Wen G D, Lin L W. Angew. Chem. Int. Ed., 2010, 49: 5367.

[18]

Eliasova P, Opanasenko M, Wheatley P S, Shamzhy M, Mazur M, Nachtigall P, Roth W J, Morris R E, Cejka J. Chem. Soc. Rev., 2015, 44: 7177.

[19]

Zhao X H, Zhao J B, Wen J J, Li A, Li G X, Wang X L. Microporous Mesoporous Mat., 2015, 213: 192.

[20]

Jin Y Y, Sun Q, Qi G D, Yang C G, Xu J, Chen F, Meng X J, Deng F, Xiao F S. Angew. Chem. Int. Ed., 2013, 52: 9172.

[21]

Fan D, Tian P, Su X, Yuan Y Y, Wang D H, Wang C, Yang M, Wang L Y, Xu S T, Liu Z M. J. Mater. Chem. A, 2013, 1: 14206.

[22]

Wang D H, Yang M, Zhang W N, Fan D, Tian P, Liu Z M. CrystEngComm, 201, 18: 1000.

[23]

Sun L J, Zhang W N, Li Z C, Yang M, Wang Y, Zhang X S, Tian P, Liu Z M. Microporous Mesoporous Mater., 2021, 315: 110915.

[24]

Tian P, Su X, Wang Y X, Xia Q H, Zhang Y, Fan D, Meng S H, Liu Z M. Chem. Mater., 2011, 23: 1406.

[25]

Komura K, Aoki H, Tanaka K, Ikeda T. Chem. Commun., 2020, 56: 14901.

[26]

Yan Y, Li J Y, Qi M, Zhang X, Yu J H, Xu R R. Sci. China Ser. B: Chem., 2009, 52: 1734.

[27]

http://zeobank.jlu.edu.cn/

[28]

Zheng C T, Li Y, Yu J H. Sci. Data, 2020, 7: 107.

[29]

https://www.hypotheticalzeolites.net/data

[30]

Meng X J, Xiao F S. Chem. Rev., 2014, 114: 1521.

[31]

Xie B, Song J W, Ren L M, Ji Y Y, Li J X, Xiao F S. Chem. Mater., 2008, 20: 4533.

[32]

Wu Z F, Song J W, Ji Y Y, Ren L M, Xiao F S. Chem. Mater., 2008, 20: 357.

[33]

Yokoi T, Yoshioka M, Imai H, Tatsumi T. Angew. Chem. Int. Ed., 2009, 48: 9884.

[34]

Iyoki K, Kamimura Y, Itabashi K, Shimojima A, Okubo T. Chem. Lett., 2010, 39: 730.

[35]

Cao K P, Fan D, Zeng S, Fan B H, Chen N, Gao M B, Zhu D L, Wang L Y, Tian P, Liu Z. Chin. J. Catal., 2021, 42: 1468.

[36]

Ji Y Y, Wang Y Q, Xie B, Xiao F S. Comments Inorg. Chem., 2015, 36: 1.

[37]

Wang Y Q, Wu Q M, Meng X J, Xiao F S. Engineering, 2017, 3: 567.

[38]

Itabashi K, Kamimura Y, Iyoki K, Shimojima A, Okubo T. J. Am. Chem. Soc., 2012, 134: 11542.

[39]

Iyoki K, Takase M, Itabashi K, Muraoka K, Chaikittisilp W, Okubo T. Microporous Mesoporous Mat., 2015, 215: 191.

[40]

Wang L Y, Tian P, Yuan Y Y, Yang M, Fan D, Zhou H, Zhu W L, Xu S T, Liu Z M. Microporous Mesoporous Mat., 2014, 196: 89.

[41]

Sano T, Itakura M, Sadakane M. J. Jpn. Petrol. Inst., 2013, 56: 183.

[42]

Goel S, Zones S I, Iglesia E. Chem. Mater., 2015, 27: 2056.

[43]

Bhadra B N, Seo P W, Khan N A, Jun J W, Kim T W, Kim C U, Jhung S H. Catal. Today, 2017, 298: 53.

[44]

Xiong X, Yuan D Z, Wu Q M, Chen F, Meng X J, Lv R H, Dai D, Maurer S, McGuire R, Feyen M, Müller U, Zhang W P, Yokoi T, Bao X H, Gies H, Marler B, De Vos D E, Kolb U, Moini A, Xiao F S. J. Mater. Chem. A, 2017, 5: 9076.

[45]

Li C G, Moliner M, Corma A. Angew. Chem. Int. Ed., 2018, 57: 15330.

[46]

Khan N A, Yoo D K, Bhadra B N, Jun J W, Kim T-W, Kim C-U, Jhung S H. Chem. Eng. J, 2019, 377: 119546.

[47]

Tang L X, Haw K-G, Zhang Y Y, Fang Q R, Qiu S L, Valtchev V. Microporous Mesoporous Mat., 2019, 280: 306.

[48]

Liu Z D, Zhu J, Wakihara T, Okubo T. Inorg. Chem. Front, 2019, 6: 14.

[49]

Zhang J, Chu Y Y, Liu X L, Xu H, Meng X J, Feng Z C, Xiao F S. Chin. J. Catal., 2019, 40: 1854.

[50]

Zicovich-Wilson C, Gandara F, Monge A, Camblor M A. J. Am. Chem. Soc., 2010, 132: 3461.

[51]

Goto I, Itakura M, Shibata S, Honda K, Ide Y, Sadakane M, Sano T. Microporous Mesoporous Mat., 2012, 158: 117.

[52]

Xu H, Chen W, Wu Q M, Lei C, Zhang J, Han S C, Zhang L, Zhu Q Y, Meng X J, Dai D, Maurer S, Parvulescu A-N, Müller U, Zhang W P, Yokoi T, Bao X H, Marler B, De Vos D E, Kolb U, Zheng A, Xiao F S. J. Mater. Chem. A, 2019, 7: 4420.

[53]

Liu Y, Liu Y. Chem. J. Chinese Universities, 2021, 42(1): 117.

[54]

Lesch D. A., Wilson S. T., Crystalline Aluminophosphate of the Molecular-Sieve Type, and Method for its Preparation, EP0254075A1, 1988

[55]

Clark H W, Rievert W J, Olken M M. Microporous Mater., 199, 6: 115.

[56]

Afeworki M, Dorset D L, Kennedy G J, Strohmaier K G. Chem. Mater., 200, 18: 1697.

[57]

Vaughan D. E. W., Flemington N. J., Synthesis of and Composition of ECR-40, Large Pore Aluminophosphate, US5976491, 1999

[58]

Lee J K, Shin J, Ahn N H, Turrina A, Park M B, Byun Y, Cho S J, Wright P A, Hong S B. Angew. Chem. Int. Ed., 2015, 54: 11097.

[59]

Zhu L F, Zhang J, Wang L, Wu Q M, Bian C Q, Pan S X, Meng X J, Xiao F S. J. Mater. Chem. A, 2015, 3: 14093.

[60]

Zhao X H, Zhao J B, Gao X P, Zhao Y. RSC Adv., 2015, 5: 95690.

[61]

Park S H, Choi W, Choi H J, Hong S B. Angew. Chem. Int. Ed., 2018, 57: 9413.

[62]

Bontchev R P, Sevov S C. Chem. Mater., 1997, 9: 3155.

[63]

Garcia-Carmona J, Rodriguez-Clemente R, Gomez-Morales J. Adv. Mater., 1998, 10: 46.

[64]

Kunii K, Narahara K, Yamanaka S. Microporous Mesoporous Mat., 2001, 50: 181.

[65]

Tian S X, Yue G, Li Y, Xue Y P, Zhu W P. China Pet. Process. Petrochem. Technol., 2009, 38: 1276.

[66]

Lee K Y, Chae H-J, Jeong S-Y, Seo G. Appl. Catal. A:Gen., 2009, 369: 60.

[67]

Nishiyama N, Kawaguchi M, Hirota Y, Van Vu D, Egashira Y, Ueyama K. Appl. Catal. A:Gen., 2009, 362: 193.

[68]

Yang G J, Wei Y X, Xu S T, Chen J R, Li J Z, Liu Z M, Yu J H, Ren X R. J. Phys. Chem. C, 2013, 117: 8214.

[69]

van Heyden H, Mintova S, Bein T. Chem. Mater., 2008, 20: 2956.

[70]

Lin S, Li J Y, Sharma R P, Yu J H, Xu R R. Top. Catal., 2010, 53: 1304.

[71]

Wang X T, Li Z B, Gong F F, Ma M M, Zhu Y J. Mol. Catal., 2021, 499: 111312.

[72]

Yang M, Tian P, Wang C, Yuan Y Y, Yang Y, Xu S T, He Y L, Liu Z M. Chem. Commun., 2014, 50: 1845.

[73]

Qiao Y Y, Yang M, Gao B B, Wang L Y, Tian P, Xu S T, Liu Z M. Chem. Commun., 201, 52: 5718.

[74]

Gao B B, Yang M, Qiao Y Y, Li J Z, Xiang X, Wu P F, Wei Y X, Xu S T, Tian P, Liu Z M. Catal. Sci. Technol., 201, 6: 7569.

[75]

Wang C, Yang M, Li M R, Xu S T, Yang Y, Tian P, Liu Z M. Chem. Commun., 201, 52: 6463.

[76]

Wu P F, Yang M, Zhang W N, Xu S T, Guo P, Tian P, Liu Z M. Chem. Commun., 2017, 53: 4985.

[77]

Wu P F, Yang M, Sun L J, Zeng S, Xu S T, Tian P, Liu Z M. Chem. Commun., 2018, 54: 11160.

[78]

Sun Q M, Wang N, Bai R S, Chen X X, Yu J H. J. Mater. Chem. A, 201, 4: 14978.

[79]

Chen G R, Sun Q M, Yu J H. Chem. Commun., 2017, 53: 13328.

[80]

Sun Q M, Wang N, Bai R S, Chen G R, Shi Z Q, Zou Y C, Yu J H. ChemSusChem, 2018, 11: 3812.

[81]

Liu Z D, Wakihara T, Nishioka D, Oshima K, Takewaki T, Okubo T. Chem. Mater., 2014, 26: 2327.

[82]

Liu Z, Wakihara T, Nomura N, Matsuo T, Anand C, Elangovan S P, Yanaba Y, Yoshikawa T, Okubo T. Chem. Mater., 201, 28: 4840.

[83]

Sun Q M, Wang N, Guo G Q, Yu J H. Chem. Commun., 2015, 51: 16397.

[84]

Chang N, Bai L, Zhang Y F, Zeng G F. Chem. Papers, 2018, 73: 221.

[85]

Zhang Q, Ma X Y, Liu L. J. Fuel Chem. Techno., 2018, 46: 1225.

[86]

Sun C, Wang Y Q, Zhao A J, Wang X, Wang C, Zhang X, Wang Z, Zhao J, Zhao T. Appl. Catal. A:Gen, 2020, 589: 117314.

[87]

Lu H, Duan W T, Zhao X H. React. Kinet. Mech. Catal., 2019, 128: 1029.

[88]

Zhang D Q, Lu H H, Su N, Li G X, Ji D, Zhao X H. J. Inorg. Mater., 2021, 36: 101.

[89]

Park K C, Ihm S K. Appl. Catal. A-Gen, 2000, 203: 201.

[90]

Liu Y Q, Liu C Y, Liu C G, Tian Z J, Lin L W. Energy Fuels, 2004, 18: 1266.

[91]

Benitez V M, Yori J C, Grau J M, Pieck C L, Vera C R. Energy Fuels, 200, 20: 422.

[92]

Parlitz B, Schreier E, Zubowa H L, Eckelt R, Lieske E, Lischke G, Fricke R. J. Catal., 1995, 155: 1.

[93]

Campelo J M, Lafont F, Marinas J M. Zeolites, 1995, 15: 97.

[94]

Hochtl M, Jentys A, Vinek H. Catal. Today, 2001, 65: 171.

[95]

Xiao H, Yu H B, Liu H G, Li X G. Pet. Process Petroche., 2014, 45: 28.

[96]

Wu Q Y, Oduro I N, Huang Y, Fang Y M. Microporous Mesoporous Mat., 2015, 218: 24.

[97]

Chen Z, Song W J, Zhu S H, Lai W K, Yi X D, Fang W P. RSC Adv., 2017, 7: 4656.

[98]

Yang M, Tian P, Liu L, Wang C, Xu S T, He Y L, Liu Z M. CrystEngComm, 2015, 17: 8555.

[99]

Zhong S L, Song S C, Wang B, Bu N, Ding X B, Zhou R F, Jin W Q. Microporous Mesoporous Mater., 2018, 263: 11.

[100]

Zhang L, Tian P, Su X, Fan D, Wang D H, Liu Z M. Chin. J. Catal., 2013, 33: 1724.

[101]

Sun C, Wang Y Q, Chen H B, Wang X, Wang C, Zhang X. Catal. Today, 2020, 355: 188.

[102]

Zhang Q, Li C Y, Shan H H, Yang C H. J. Fuel Chem. Techno., 2011, 39: 787.

[103]

Sun N, Wang H Y, Ma Y X, Yang Z X, Kang L. China Pet. Process. Petrochem. Technol., 2019, 21: 58.

[104]

Zhao H W, Zhao Y N, Ma Y H, Yong X, Wei M, Chen H, Zhang C J, Li Y D. J. Catal., 2019, 377: 218.

[105]

Li K X, Cheng H Y, Li Z G. Contemporary Chemical Industry, 2020, 49: 295.

[106]

Sun L J, Yang M, Cao L, Cao Y, Xu S T, Zhu D L, Tian P, Liu Z M. Microporous Mesoporous Mat., 2020, 309: 110585.

AI Summary AI Mindmap
PDF

130

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/