Chem. J. Chinese Universities ›› 2021, Vol. 42 ›› Issue (1): 201.doi: 10.7503/cjcu20200415
Special Issue: 分子筛功能材料 2021年,42卷,第1期
• Review • Previous Articles Next Articles
LING Yang1, ZHANG Guanqun1(), MA Yanhang1,2(
)
Received:
2020-07-01
Online:
2021-01-10
Published:
2021-01-12
Contact:
ZHANG Guanqun
E-mail:zhanggq1@shanghaitech.edu.cn;mayh2@shanghaitech.edu.cn
Supported by:
CLC Number:
TrendMD:
LING Yang, ZHANG Guanqun, MA Yanhang. Progress of Zeolite Structural Analysis Based on Transmission Electron Microscopy[J]. Chem. J. Chinese Universities, 2021, 42(1): 201.
3D ED method | Electron beam tilt | Goniometer rotation | Electron beam precession | Data collection |
---|---|---|---|---|
ADT(PEDT) | No | Yes | Yes | Stepwise |
RED | Yes | Yes | No | Stepwise |
cRED | No | Yes | No | Continuous |
3D ED method | Electron beam tilt | Goniometer rotation | Electron beam precession | Data collection |
---|---|---|---|---|
ADT(PEDT) | No | Yes | Yes | Stepwise |
RED | Yes | Yes | No | Stepwise |
cRED | No | Yes | No | Continuous |
1 | Chester A. W., Derouane E. G., Zeolite Characterization and Catalysis, Springer, Dordrecht, 2009, 169—196 |
2 | Qiao Y., Yang M., Gao B., Wang L., Tian P., Xu S., Liu Z., Chem. Commun.,2016, 52(33), 5718—5721 |
3 | Sun J., Bonneau C., Cantín Á., Corma A., Díaz-Cabañas M. J., Moliner M., Zhang D., Li M., Zou X., Nature, 2009, 458(7242), 1154—1157 |
4 | Weckhuysen B. M., Yu J., Chem. Soc. Rev., 2015, 44(20), 7022—7024 |
5 | Wan W., Su J., Zou X. D., Willhammar T., Inorg. Chem. Front., 2018, 5(11), 2836—2855 |
6 | Li C., Zhang Q., Mayoral A., ChemCatChem, 2020, 12(5), 1248—1269 |
7 | Liu L., Corma A., Chem. Rev., 2018, 118(10), 4981—5079 |
8 | Ma Y., Han L., Liu Z., Mayoral A., Díaz I., Oleynikov P., Ohsuna T., Han Y., Pan M., Zhu Y., Sakamoto Y., Che S., Terasaki O., Springer Handbook of Microscopy, Springer, Cham, 2019, 1391—1450 |
9 | Smeets S., Xie D., Baerlocher C., McCusker L. B., Wan W., Zou X., Zones S. I., Angew. Chem. Int. Ed., 2014, 53(39), 10398—10402 |
10 | Cichocka M. O., Lorgouilloux Y., Smeets S., Su J., Wan W., Caullet P., Bats N., McCusker L. B., Paillaud J. L., Zou X., Cryst. Growth & Des., 2018, 18(4), 2441—2451 |
11 | Baerlocher C., Gramm F., Massüger L., McCusker L. B., He Z., Hovmöller S., Zou X., Science, 2007, 315(5815), 1113—1116 |
12 | Yu Z. B., Han Y., Zhao L., Huang S., Zheng Q. Y., Lin S., Córdova A., Zou X., Sun J., Chem. Mater., 2012, 24(19), 3701—3706 |
13 | Ma Y., Oleynikov P., Terasaki O., Nat. Mater., 2017, 16(7), 755—759 |
14 | Mayoral A., Carey T., Anderson P. A., Lubk A., Diaz I., Angew. Chem. Int. Ed., 2011, 50(47), 11230—11233 |
15 | Mayoral A., Readman J. E., Anderson P. A., J. Phys. Chem. C, 2013, 117(46), 24485—24489 |
16 | Wang N., Sun Q., Bai R., Li X., Guo G., Yu J., J. Am. Chem. Soc., 2016, 138(24), 7484—7487 |
17 | Liu L., Wang N., Zhu C., Liu X., Zhu Y., Guo P., Alfilfil L., Dong X., Zhang D., Han Y., Angew. Chem. Int. Ed., 2020, 59(2), 819—825 |
18 | Shen B., Chen X., Cai D., Xiong H., Liu X., Meng C., Han Y., Wei F., Adv. Mater., 2020, 32(4), 1906103 |
19 | Newsam J., Treacy M. M., Koetsier W., Gruyter C. D., Proc. R. Soc. Lond. A, 1988, 420(1859), 375—405 |
20 | Burton A. W., Elomari S., Chan I., Pradhan A., Kibby C., J. Phys. Chem. B, 2005, 109(43), 20266—20275 |
21 | Terasaki O., Ohsuna T., Inagaki S., Catal. Surv. Japan, 2001, 4(2), 99—106 |
22 | Gemmi M., Lanza A . E., Acta Cryst. B, 2019, 75(4), 495—504 |
23 | Luo Y., Smeets S., Peng F., Etman A. S., Wang Z., Sun J., Yang W., Chem. Eur. J., 2017, 23(66), 16829—16834 |
24 | Seo S., Yang T., Shin J., Jo D., Zou X., Hong S. B., Angew. Chem. Int. Ed., 2018, 57(14), 3727—3732 |
25 | Willhammar T., Su J., Yun Y., Zou X., Afeworki M., Weston S. C., Vroman H. B., Lonergan W. W., Strohmaier K. G., Inorg. Chem., 2017, 56(15), 8856—8864 |
26 | Luo Y., Smeets S., Wang Z., Sun J., Yang W., Chem. Eur. J., 2019, 25(9), 2184—2188 |
27 | Yuhas B. D., Mowat J. P. S., Miller M. A., Sinkler W., Chem. Mater., 2018, 30(3), 582—586 |
28 | Xu L., Ji X., Jiang J., Han L., Che S., Wu P., Chem. Mater., 2015, 27(23), 7852—7860 |
29 | Smeets S., Berkson Z. J., Xie D., Zones S. I., Wan W., Zou X. D., Hsieh M. F., Chmelka B. F., McCusker L. B., Baerlocher C., J. Am. Chem. Soc., 2017, 139(46), 16803—16812 |
30 | Wan W., Hovmöller S., Zou X., Ultramicroscopy, 2012, 115, 50—60 |
31 | Hovmöller S., Ultramicroscopy, 1992, 41(1—3), 121—135 |
32 | Momma K., Izumi F., J. Appl. Crystal., 2011, 44(6), 1272—1276 |
33 | Choi M., Na K., Kim J., Sakamoto Y., Terasaki O., Ryoo R., Nature, 2009, 461(7265), 246—249 |
34 | Jia X., Zhang Y., Gong Z., Wang B., Zhu Z., Jiang J., Xu H., Sun H., Han L., Wu P., Che S., J. Phys. Chem. C, 2018, 122(16), 9117—9126 |
35 | Ritsch S., Ohnishi N., Ohsuna T., Hiraga K., Terasaki O., Kubota Y., Sugi Y., Chem. Mater., 1998, 10(12), 3958—3965 |
36 | Davis M. E., ACS Catal., 2018, 8(11), 10082—10088 |
37 | Che S., Garcia⁃Bennett A. E., Yokoi T., Sakamoto K., Kunieda H., Terasaki O., Tatsumi T., Nat. Mater., 2003, 2(12), 801—805 |
38 | Brand S. K., Schmidt J. E., Deem M. W., Daeyaert F., Ma Y., Terasaki O., Orazov M., Davis M. E., Proc. Natl. Acad. Sci. U. S. A., 2017, 114(20), 5101—5106 |
39 | Fultz B., Howe J., Transmission Electron Microscopy and Diffractometry of Materials, Springer, Berlin, 2013, 587—615 |
40 | Firth D. S., Morris S. A., Wheatley P. S., Russell S. E., Slawin A. M., Dawson D. M., Mayoral A., Opanasenko M., Položij M., Čejka J. I., Chem. Mater., 2017, 29(13), 5605—5611 |
41 | Aydin C., Lu J., Liang A. J., Chen C. Y., Browning N. D., Gates B. C., Nano lett., 2011, 11(12), 5537—5541 |
42 | Kistler J. D., Chotigkrai N., Xu P., Enderle B., Praserthdam P., Chen C. Y., Browning N. D., Gates B. C., Angew. Chem. Int. Ed., 2014, 53(34), 8904—8907 |
43 | Lu J., Aydin C., Browning N. D., Gates B. C., Angew. Chem. Int. Ed., 2012, 51(24), 5842—5846 |
44 | Altantzis T., Coutino⁃Gonzalez E., Baekelant W., Martinez G. T., Abakumov A. M., Tendeloo G. V., Roeffaers M. B., Bals S., Hofkens J., ACS Nano, 2016, 10(8), 7604—7611 |
45 | Sun Q., Wang N., Zhang T., Bai R., Mayoral A., Zhang P., Zhang Q., Terasaki O., Yu J., Angew. Chem. Int. Ed., 2019, 58(51), 18570—18576 |
46 | Mayoral A., Zhang Q., Zhou Y., Chen P., Ma Y., Monji T., Losch P., Schmidt W., Schüth F., Hirao H.,Yu J., Terasaki O., Angew. Chem. Int. Ed., 2020, 59(44), 19510—19517 |
47 | Bosch E. G., Lazić I., Ultramicroscopy, 2015, 156, 59—72 |
48 | Lazić I., Bosch E. G., Lazar S., Ultramicroscopy, 2016, 160, 265—280 |
49 | Ma Y., Wang N., Qian W., Wang Y., Zhang J., Wei F., RSC Adv., 2016, 6(84), 81198—81202 |
50 | Song D., Zhang X., Lian C., Liu H., Alexandrou I., Lazić I., Bosch E. G., Zhang D., Wang L., Yu R., Cheng Z., Song C., Ma X., Duan W., Xue Q., Zhu J., Adv. Func. Mater., 2019, 29(45), 1903843 |
51 | Shen B., Chen X., Shen K., Xiong H., Wei F., Nat. Commun., 2020. doi:10.1038/s41467⁃020⁃16531⁃y |
52 | Han L., Miyasaka K., Terasaki O., Structure from Diffraction Methods: Inorganic Materials Series, John Wiley & Sons,Chichester,2014, 201—258 |
53 | Wagner P., Terasaki O., Ritsch S., Nery J. G., Zones S. I., Davis M. E., Hiraga K., J. Phy. Chem. B, 1999, 103(39), 8245—8250 |
54 | Guo P., Shin J., Greenaway A. G., Min J. G., Su J., Choi H. J., Liu L., Cox P. A., Hong S. B., Wright P. A., Nature, 2015, 524(7563), 74—78 |
55 | Lee H., Shin J., Choi W., Choi H. J., Yang T., Zou X., Hong S. B., Chem. Mater., 2018, 30(19), 6619—6623 |
56 | Gemmi M., Mugnaioli E., Gorelik T. E., Kolb U., Palatinus L., Boullay P., Hovmoller S., Abrahams J. P., ACS Cent. Sci., 2019, 5(8), 1315—1329 |
57 | Dorset D. L., Weston S. C., Dhingra S. S., J. Phys. Chem. B, 2006, 110(5), 2045—2050 |
58 | Dorset D. L., Z. Kristallogr., 2006, 221(4), 260—265 |
59 | Kolb U., Gorelik T., Kübel C., Otten M., Hubert D., Ultramicroscopy, 2007, 107(6/7), 507—513 |
60 | Kolb U., Gorelik T., Otten M., Ultramicroscopy, 2008, 108(8), 763—772 |
61 | Mugnaioli E., Gorelik T., Kolb U., Ultramicroscopy, 2009, 109(6), 758—765 |
62 | Zhang D. L., Oleynikov P., Hovmoller S., Zou X. D., Z. Kristallogr., 2010, 225(2/3), 94—102 |
63 | Nannenga B. L., Shi D., Leslie A. G., Gonen T., Nat. Methods, 2014, 11(9), 927—930 |
64 | Gemmi M., La Placa M. G. I., Galanis A. S., Rauch E. F., Nicolopoulos S., J. Appl. Cryst., 2015, 48(3), 718—727 |
65 | Wang Y. C., Takki S., Cheung O., Xu H. Y., Wan W., Ohrstrom L., Inge A. K., Chem. Commun., 2017, 53(52), 7018—7021 |
66 | Sun T., Wei L., Chen Y. C., Ma Y., Zhang Y. B., J. Am. Chem. Soc., 2019, 141(28), 10962—10966 |
67 | Burla M. C., Caliandro R., Carrozzini B., Cascarano G. L., Cuocci C., Giacovazzo C., Mallamo M., Mazzone A., Polidori G., J. Appl. Cryst., 2015, 48(1), 306—309 |
68 | Kolb U., Mugnaioli E., Gorelik T., Cryst. Res. Tech., 2011, 46(6), 542—554 |
69 | Wan W., Sun J., Su J., Hovmöller S., Zou X., J. Appl. Cryst., 2013, 46(6), 1863—1873 |
70 | Willhammar T., Sun J., Wan W., Oleynikov P., Zhang D., Zou X., Moliner M., Gonzalez J., Martínez C., Rey F., Nat. Chem., 2012, 4(3), 188—194 |
71 | Kang J. H., Xie D., Zones S. I., Smeets S., McCusker L. B., Davis M. E., Chem. Mater., 2016, 28(17), 6250—6259 |
72 | Bieseki L., Simancas R., Jordá J. L., Bereciartua P. J., Cantín Á., Simancas J., Pergher S. B., Valencia S., Rey F., Corma A., Chem. Commun., 2018, 54(17), 2122—2125 |
73 | Liu X., Luo Y., Mao W., Jiang J., Xu H., Han L., Sun J., Wu P., Angew. Chem. Int. Ed., 2020, 59(3), 1166—1170 |
74 | Jiang J., Jorda J. L., Yu J., Baumes L. A., Mugnaioli E., Diaz⁃Cabanas M. J., Kolb U., Corma A., Science, 2011, 333(6046), 1131—1134 |
75 | Li J., Zhang C., Jiang J., Yu J., Terasaki O., Mayoral A., J. Phys. Chem. Lett., 2020, 11(9), 3350—3356 |
76 | Burla M. C., Caliandro R., Carrozzini B., Cascarano G. L., Cuocci C., Giacovazzo C., Mallamo M., Mazzone A., Polidori G., J. Appl. Cryst., 2015, 48(1), 306—309 |
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