Chinese Journal of Catalysis ›› 2019, Vol. 40 ›› Issue (11): 1637-1654.DOI: 10.1016/S1872-2067(19)63372-3
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Shelly Kelly, Wharton Sinkler, Lijun Xu, Sergio Sanchez, Cem Akatay, Haiyan Wang, John Qianjun Chen
Received:
2019-01-31
Revised:
2019-03-28
Online:
2019-11-18
Published:
2019-09-06
Contact:
John Qianjun Chen
Shelly Kelly, Wharton Sinkler, Lijun Xu, Sergio Sanchez, Cem Akatay, Haiyan Wang, John Qianjun Chen. Advanced characterization for industrial catalysis applications[J]. Chinese Journal of Catalysis, 2019, 40(11): 1637-1654.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(19)63372-3
[1] V. Haensel, US 2479109, 1949. [2] V. Haensel, US 2479110, 1949. [3] H. Taghvaei, M. M. Shirazi, N. Hooshmand, M. R. Rahimpour, A. Jahanmiri, Appl. Energy, 2012, 98, 3-10. [4] M. R. Rahimpour, M. Jafari, D. Iranshahi, Appl. Energy, 2013, 109, 79-93. [5] A. Aitani, Catalytic Naphtha Reforming, Encycl. Chem. Process, 2006, 4940 [6] J. E. Mondloch, E. Bayram, R.G. Finke, J. Mol. Catal. A, 2012, 355, 1-38. [7] S. E. Wanke, P.C. Flynn, Catal. Rev. Sci. Eng., 1975, 12, 93-135. [8] J. J. F. Scholten, A. P. Pijpers, A. M. L. Hustings, Catal. Rev. Sci. Eng., 1985, 27, 151-206. [9] R. A. Herrmann, S. F. Adler, M. S. Goldstein, R. M. Debaun, J. Phys. Chem., 1961, 65, 2189-2194. [10] L. Spenadel, M. Boudart, J. Phys. Chem., 1960, 64, 204-207. [11] F. Behafarid, L. K. Ono, S. Mostafa, J. R. Croy, G. Shafai, S. Hong, T. S. Rahman, S. R. Bare, B. Roldan Cuenya, Phys. Chem. Chem. Phys., 2012, 14, 11766-11779. [12] M. K. Oudenhuijzen, J. H. Bitter, D. C. Koningsberger, J. Phys. Chem. B, 2001, 105, 4616-4622. [13] F. J. Gracia, J. T. Miller, A. J. Kropf, E. E. Wolf, J. Catal., 2002, 209, 341-354. [14] J. R. Chang, S. L. Chang, T. B. Lin, J. Catal., 1997, 169, 338-346. [15] P. G. Menon, G. F. Froment, J. Mol. Catal., 1984,25, 59-66. [16] P. G. Menon, G. F. Froment, J. Catal., 1979, 59, 138-147. [17] M. Vaarkamp, J. T. Miller, F. S. Modica, D. C. Koningsberger, J. Catal., 1996, 163, 294-305. [18] J. Margitfalvi, P. Szedlacsek, M. Hegedüs, F. Nagy, Appl. Catal., 1985, 15, 69-78. [19] G. J. Den Otter, F.M. Dautzenberg, J. Catal. 1978, 53, 116-125. [20] H. Dexpert, J. Phys., 1986, 47, 219-226. [21] R. B. Greegor, F. W. Lytle, J. Catal., 1980, 43, 465-486. [22] W. Sinkler, S. I. Sanchez, S. A. Bradley, J. Wen, B. Mishra, S. D. Kelly, S. R. Bare, ChemCatChem, 2015, 7, 3779-3787. [23] S. A. Bradley, W. Sinkler, D. A. Blom, W. Bigelow, P. M. Voyles, L. F. Allard, Catal. Lett., 2012, 142, 176-182. [24] C. Mager-Maury, G. Bonnard, C. Chizallet, P. Sautet, P. Raybaud, ChemCatChem, 2011, 3, 200-207. [25] C. Mager-Maury, C. Chizallet, P. Sautet, P. Raybaud, ACS Catal., 2012, 2,1346-1357. [26] J. Lynch, Oil Gas Sci. Technol., 2002, 57, 281-305. [27] H. Mistry, F. Behafarid, S. R. Bare, B. Roldan Cuenya, ChemCatChem, 2014, 6,348-352. [28] N. Tian, Z.-Y. Zhou, S.-G. Sun, Y. Ding, Z. L. Wang, Science, 2007, 316, 732. [29] M. Digne, P. Sautet, P. Raybaud, P. Euzen, H. Toulhoat, J. Catal., 2002, 211,1-5. [30] V. P. Pakharukova, D. A. Yatsenko, E. Y. Gerasimov, A. S. Shalygin, O. N. Martyanov, S. V Tsybulya, J. Solid State Chem., 2017, 246, 284-292. [31] H. P. Pinto, R. M. Nieminen, S. D. Elliott, Phys. Rev. B, 2004, 70, 125402. [32] X. Krokidis, P. Raybaud, A. E. Gobichon, B. Rebours, P. Euzen, H. Toulhoat, J. Phys. Chem., 2001,105, 5121-5130. [33] F. Le Normand, S. Bazin, H. Dexpert, P. Lagarde, J. P. Bournonville, in:M. J. Phillips, M. Ternan (Eds.), Proc. 9th Int. Conf. Catal., The Chemical Institue of Canada, Ontario, Canada, 1988,1401-1412. [34] A. Munoz-Paez, D. C. Koningsberger, J. Phys. Chem., 1995, 99, 4193-4204. [35] P. Lagarde, T. Murata, G. Vlaic, E. Freund, H. Dexpert, J. P. Bournonville, J. Catal., 1983, 84, 333-343. [36] G. H. Via, J. H. Sinfelt, F. W. Lytle, J. Chem. Phys., 1979, 71, 690-699. [37] P. D. Nellist, S. J. Pennycook, Science, 1996, 274,413-415. [38] C. H. Hu, C. Chizallet, C. Mager-Maury, M. Corral-Valero, P. Sautet, H. Toulhoat, P. Raybaud, J. Catal., 2010, 274, 99-110. [39] D. Bazin, H. Dexpert, J. P. Bournonville, J. Lynch, J. Catal., 1990, 123, 86-97. [40] D. C. Koningsberger, D. E. Sayers, Solid State Ionics, 1985, 16, 23-27. [41] C.-B. Wang, H.-K. Lin, S.-N. Hsu, T.-H. Huang, H.-C. Chiu, J. Mol. Catal. A, 2002, 188, 201-208. [42] E. Bus, J. T. Miller, A. J. Kropf, R. Prins, J. A. Van Bokhoven, Phys. Chem. Chem. Phys., 2006, 8, 3248-3258. [43] R. Kramer, M. Fischbacher, J. Mol. Catal., 1989, 51, 247-259. [44] M. Salmeron, G. A. Somorjai, A. Wold, R. Chianelli, K. S. Liang, Chem. Phys. Lett., 1982, 90, 105-107. [45] R. R. Chianelli, Catal. Rev. Sci. Eng., 1984, 26, 361-393. [46] S. Kasztelan, H. Toulhoat, J. Grimblot, J. P. Bonnelle, Appl. Catal., 1984, 13, 127-159. [47] R. J. H. Voorhoeve, J. C. M. Struiver, J. Catal., 1971, 23, 228-235. [48] S. Kasztelan, G. B. McGarvey, J. Catal., 1994, 147, 476-483. [49] S. Kasztelan, L. Jalowiecki, A. Wambeke, J. Grimblot, J. P. Bonnelle, Bull. Des Soc. Chim. Belges., 1987, 96, 1003-1008. [50] A. Wambeke, L. Jalowiecki, S. Kasztelan, J. Grimblot, J. P. Bonnelle, J. Catal., 1988, 109, 320-328. [51] H. Farag, K. Sakanishi, M. Kouzu, A. Matsumura, Y. Sugimoto, I. Saito, Catal. Commun., 2003, 4, 321-326. [52] P. Afanasiev, J. Catal., 2010, 269, 269-280. [53] M. Dobrovolszky, P. Tetenyi, Z. Paal, Chem. Eng. Commun., 1989, 83, 1-8. [54] T. Kabe, W. Qian, S. Ogawa, A. Ishihara, J. Catal., 1993, 143, 239-284. [55] J. V Lauritsen, J. Kibsgaard, G. H. Olesen, P. G. Moses, B. Hinnemann, S. Helveg, J. K. Nørskov, B. S. Clausen, H. Topsøe, E. Lægsgaard, F. Besenbacher, J. Catal., 2007, 249, 220-233. [56] N. Y. Topsøe, H. Topsøe, J. Catal., 1983, 84, 386-401. [57] H. Topsøe, B. S. Clausen, R. Candia, C. Wivel, S. Mørup, J. Catal., 1981, 68, 433-452. [58] T. Weber, J. C. Muijsers, J. H. M. C. Van Wolput, C. P. J. Verhagen, J. W. Niemantsverdriet, J. Phys. Chem., 1996, 100, 14144-14150. [59] A. J. Van Der Vlies, G. Kishan, J. W. Niemantsverdriet, R. Prins, T. Weber, J. Phys. Chem. B, 2002, 106, 3449-3457. [60] L. Van Haandel, G. M. Bremmer, E. J. M. Hensen, T. Weber, J. Catal., 2016, 342, 27-39. [61] D. Nicosia, R. Prins, J. Catal., 2005, 231, 259-268. [62] A. Rochet, B. Baubet, V. Moizan, E. Devers, A. Hugon, C. Pichon, E. Payen, V. Briois, J. Phys. Chem. C, 2017, 121, 18544-18556. [63] R. G. Leliveld, A. J. Van Dillen, J. W. Geus, D. C. Koningsberger, J. Catal., 1997, 171, 115-129. [64] H. R. Reinhoudt, Y. Van Der Meer, A. M. Van Der Kraan, A. D. van Langeveld, J. A. Moulijn, Fuel Process. Technol., 1999, 61, 43-54. [65] L. Van Haandel, E. J. M. Hensen, T. Weber, Catal. Today, 2017, 292, 51-57. [66] Y. Okamoto, A. Kato, N. Rinaldi, T. Fujikawa, H. Koshika, I. Hiromitsu, T. Kubota, J. Catal., 2009, 265, 216-228. [67] M. Breysse, E. Furimsky, S. Kasztelan, M. Lacroix, G. Perot, Catal. Rev.-Sci. Eng., 2002, 44, 651-735. [68] B. Scheffer, P. J. Mangnus, J. A. Moulijn, J. Catal., 1990, 121, 18-30. [69] R. C. Hoodless, R. B. Moyes, P. B. Wells, Bull. Des Soc. Chim. Belges., 1984, 93, 673-679. [70] P. J. Mangnus, A. Riezebos, A. D. van Langeveld, J. A. Moulijn, J. Catal., 1995, 151, 178-191. [71] G. B. McGarvey, S. Kasztelan, J. Catal., 1994, 148, 149-156. [72] H. Topsøe, B. S. Clausen, N. Y. Topsoe, J. K. Nørslov, C. V. Ovesen, C. J. H. Jacobsen, Bull. Des Soc. Chim. Belges., 1995, 104, 283-291. [73] P. Arnoldy, J. A. M. van den Heijkant, G. D. de Bok, J. A. Moulijn, J. Catal. 1985, 92, 35-55. [74] C. J. Wright, C. Sampson, D. Fraser, R. B. Moyes, P. B. Wells, C. Riekel, J. Chem. Soc.-Faraday Trans., 1980, 76, 1585-1598. [75] C. J. Wright, D. Fraser, R. B. Moyes, P. B. Wells, Appl. Catal., 1981, 1, 49-58. [76] P. N. Jones, E. Knözinger, W. Langel, R. B. Moyes, J. Tomkinson, Surf. Sci., 1988, 207, 159-176. [77] P. Sundberg, R. B. Moyes, J. Tomkinson, Bull. Des Soc. Chim. Belges., 1991, 100, 967-976. [78] T. Komatsu, W. K. Hall, J. Phys. Chem., 1991, 95, 9966-9974. [79] J. V. Lauritsen, S. Helveg, E. Laegsgaard, I. Stensgaard, B. S. Clausen, H. Topsøe, F. Besenbacher, J. Catal., 2001, 197, 1-5. [80] S. Helveg, J. V Lauritsen, E. Lægsgaard, I. Stensgaard, J. K. Nørskov, B. S. Clausen, H. Topsøe, F. Besenbacher, Phys. Rev. Lett., 2000, 84, 951-954. [81] N. Y. Topsøe, H. Topsøe, J. Catal., 1993, 139, 641-651. [82] J. Chen, F. Maugé, J. El Fallah, L. Oliviero, J. Catal., 2014, 320, 170-179. [83] S. D. Kelly, N. Yang, G. E. Mickelson, N. Greenlay, E. Karapetrova, W. Sinkler, S. R. Bare, J. Catal., 2009, 263, 16-33. [84] J. T. Miller, C. L. Marshall, A. J. Kropf, J. Catal., 2001, 202, 89-99. [85] T. Shido, R. Prins, J. Phys. Chem. B, 1998, 102, 8426-8435. [86] S. P. A. Louwers, R. Prins, J. Catal., 1992, 133, 94-111. [87] S. P. A. Louwers, R. Prins, J. Catal., 1993, 139,525-539. [88] C. Wivel, R. Candia, B. S. Clausen, S. Mørup, H. Topsøe, J. Catal., 1981, 68, 453-463. [89] J. Polz, H. Zeilinger, B. Müller, H. Knözinger, J. Catal., 1989, 120, 22-28. [90] L. Jalowiecki, J. Grimblot, J. P. Bonnelle, J. Catal., 1990, 101-108. [91] A. B. Anderson, Z. Y. Al-Saigh, W. K. Hall, J. Phys. Chem., 1988, 92, 803-809. [92] E. J. M. Hensen, G. M. H. J. Lardinois, V. H. J. de Beer, J. A. R. van Veen, R. A. van Santen, J. Catal., 1999, 187, 95-108. [93] X. S. Li, Q. Xin, X. X. Guo, P. Grange, B. Delmon, J. Catal., 1992, 137, 385-393. [94] L. S. Byskov, J. K. Nørskov, B. S. Clausen, H. Topsøe, J. Catal., 1999, 187, 109-122. [95] P. Raybaud, J. Hafner, G. Kresse, S. Kasztelan, H. Toulhoat, J. Catal., 2000, 189, 129-146. [96] H. Schweiger, P. Raybaud, G. Kresse, H. Toulhoat, J. Catal., 2002, 207, 76-87 [97] J. I. Castello I Vidal, A. Lopez Lillo, Nat. Resour., 1993, 29, 12-16. [98] F. Besenbacher, M. Brorson, B. S. Clausen, S. Helveg, B. Hinnemann, J. Kibsgaard, J. V. Lauritsen, P. G. Moses, J. K. Nørskov, H. Topsøe, Catal. Today, 2008, 130, 86-96. [99] A. S. Rosen, J. M. Notestein, R. Q. Snurr, J. Phys. Chem. C, 2018,122, 15318-15329. |
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