[1] P. Tang, Q.J. Zhu, Z.X. Wu, D. Ma, Methane activation:the past and future, Energy Environ. Sci. 7(2014) 2580-2591.[2] M.J. da Silva, Synthesis of methanol from methane:challenges and advances on the multi-step (syngas) and one-step routes (DMTM), Fuel Process. Technol. 145(2016) 42-61.[3] Z. Zakaria, S.K. Kamarudin, Direct conversion technologies of methane to methanol:an overview, Renew. Sust. Energ. Rev. 65(2016) 250-261.[4] O.A. Mironov, S.M. Bischof, M.M. Konnick, B.G. Hashiguchi, V.R. Ziatdinov, W.A. Goddard, M. Ahlquist, R.A. Periana, Using reduced catalysts for oxidation reactions:mechanistic studies of the "Periana-Catalytica" system for CH4 oxidation, J. Am. Chem. Soc. 135(2013) 14644-14658.[5] Z. Guo, B. Liu, Q.H. Zhang, W. Deng, Y. Wang, Y.H. Yang, Recent advances in heterogeneous selective oxidation catalysis for sustainable chemistry, Chem. Soc. Rev. 43(2014) 3480.[6] L. Meng, X. Zhu, E.J.M. Hensen, Stable Fe/ZSM-5 nanosheet zeolite catalystsfor the oxidation of benzene to phenol, ACS Catal. 7(2017) 2709-2719.[7] B. Ipek, R.F. Lobo, Catalytic conversion of methane to methanol on Cu-SSZ-13 using N2O as oxidant, Chem. Commun. 52(2016) 13401.[8] K.S. Park, J.H. Kim, S.H. Park, J.M. Dong, H.S. Roh, C.H. Chung, S.H. Um, J.H. Choi, J.W. Bae, Direct activation of CH4 to oxygenates and unsaturated hydrocarbons using N2O on Fe-modified zeolites, J. Mol. Catal. A Chem. 426(2017) 130-140.[9] X.X. Wang, Y. Wang, Q.H. Tang, Q. Guo, Q.H. Zhang, H.L. Wan, MCM-41-supported iron phosphate catalyst for partial oxidation of methane to oxygenates with oxygen and nitrous oxide, J. Catal. 217(2003) 457-467.[10] E.V. Starokon, K.A. Dubkov, L.V. Pirutko, G.I. Panov, Mechanisms of iron activation on Fe-containing zeolites and the charge of α-oxygen, Top. Catal. 23(2003) 137-143.[11] L.V. Pirutko, V.S. Chernyavsky, E.V. Starokon, A.A. Ivanov, A.S. Kharitonov, G.I. Panov, The role of α-sites in N2O decomposition over FeZSM-5. Comparison with the oxidation of benzene to phenol, Appl. Catal. B Environ. 91(2009) 174-179.[12] M.V. Parfenov, E.V. Starokon, L.V. Pirutko, G.I. Panov, Quasicatalytic and catalytic oxidation of methane to methanol by nitrous oxide over FeZSM-5 zeolite, J. Catal. 318(2014) 14-21.[13] B.R. Wood, J.A. Reimer, A.T. Bell, M.T. Janicke, K.C. Ott, Methanol formation on Fe/Al-MFI via the oxidation of methane by nitrous oxide, J. Catal. 225(2004) 300-306.[14] H. Jouini, I. Mejri, C. Petitto, J.M. Ortigosa, A.V. Moya, M. Mhamdi, T. Blasco, G. Delahay, Characterization and NH3-SCR reactivity of Cu-Fe-ZSM-5 catalysts prepared by solid state ion exchange:the metal exchange order effect, Microporous Mesoporous Mater. 260(2018) 217-226.[15] Y. Wang, W. Yang, L.J. Yang, X.X. Wang, Q.H. Zhang, Iron-containing heterogeneous catalysts for partial oxidation of methane and epoxidation of propylene, Catal. Today 117(2006) 156-162.[16] B.M. Weckhuysen, Chemical imaging of spatial heterogeneities in catalytic solids at different length and time scales, 48(2009) 4910-4943.[17] J. Regalbuto, Catalyst Preparation:Science and Engineering, CRC Press, 2007375-386.[18] X.X. Wang, J.L. Long, G.Y. Zhang, X.Z. Fu, J.M. Basset, F. Lefebvre, Construction of highly dispersed mononuclear iron-oxo species in the supercages of Y zeolite by use of surface organometallic chemistry, Microporous Mesoporous Mater. 108(2008) 258-265.[19] Z.K. Zhang, H. Y, B.B. Liao, H.Y. Liu, Y.F. Chen, Influence of iron precursors on NH3-SCR behavior of Fe/β catalyst, Chinese, J. Catal. 33(3) (2012) 576-580.[20] G.Q. Guo, Y.M. Huang, Studies on the properties of the small Fe particles of Fe3(CO)12/Y catalyst over the reaction of CO/H2, Nat. Gas Ind. 25(2000) 15-18.[21] J.L. Long, X.X. Wang, Z.X. Ding, Z.Z. Zhang, H.X. Lin, W.X. Dai, X.Z. Fu, Binuclear μ-hydroxo-bridged iron clusters derived from surface organometallic chemistry of ferrocene in cavities of HY zeolite:local structure, bound sites, and catalytic reactivity, J. Catal. 264(2009) 163-174.[22] G.J. Wu, Y. Hao, N. Zhang, N.J. Guan, L.D. Li, W. Grunert, Oxidative dehydrogenation of propane with nitrous oxide over Fe-O-Al species occluded in ZSM-5:reaction and deactivation mechanisms, Microporous Mesoporous Mater. 198(2014) 82-91.[23] Y. Zheng, X.X. Wang, X.Z. Fu, K.M. Wei, Grafting reaction of tetrabutyl Ti on surface of Pt/HY molecular sieve supercage and performance of the catalyst, Petrochem. Technol. 34(2005) 213-217.[24] M.L. Rache, A.R. Garcia, H.R. Zea, A.M.T. Silva, L.M. Madeira, J.H. Ramirez, Azo-dye orange Ⅱ degradation by the heterogeneous Fenton-like process using a zeolite Y-Fe catalyst-kinetics with a model based on the Fermi's equation, Appl. Catal. B Environ. 146(2014) 192-200.[25] E. Lima, A. Guzmán-Vargas, J. Méndez-Vivar, H. Pfeiffer, J. Fraissard, Fe-ZSM-5 catalysts:preparation in organic media, Fe-particle morphology and NOx reduction activity, Catal. Lett. 120(2008) 244-251.[26] M.S. Kumar, M. Schwidder, W. Grünert, A. Brückner, On the nature of different iron sites and their catalytic role in Fe-ZSM-5 DeNOx catalysts:new insights by a combined EPR and UV/VIS spectroscopic approach, J. Catal. 227(2004) 384-397.[27] B. Wichterlová, P. Jiru, ESR study of Fe3+-zeolites, React. Kinet. Catal. Lett. 13(3) (1980) 197-201.[28] J.R. Pearce, W.J. Mortier, J.B. Uytterhoeven, Crystallographic study of the distribution of cations in Y-type zeolites containing FeⅡ and FeⅢ, 77(1981) 937-946.[29] P.F. Xie, Y.J. Luo, Z. Ma, C.Y. Huang, C.X. Miao, Y.H. Yue, W.M. Hua, Z. Gao, Catalytic decomposition of N2O over Fe-ZSM-11 catalysts prepared by different methods:nature of active Fe species, J. Catal. 330(2015) 311-322.[30] K.A. Dubkov, N.S. Ovanesyan, A.A. Shteinman, E.V. Starokon, G.I. Panov, Evolution of iron states and formation of α-sites upon activation of FeZSM-5 zeolites, J. Catal. 207(2) (2002) 341-352.[31] P. Sazama, B. Wichterlová, E. Tábor, P. Štastny, N.K. Sathu, Z. Sobalík, J. Dedecek, Š. Sklenák, P. Klein, A. Vondrová, Tailoring of the structure of Fe-cationic species in Fe-ZSM-5 by distribution of Al atoms in the framework for N2O decomposition and NH3-SCR-NOx, J. Catal. 312(2014) 123-138.[32] J.Y. Wang, H. Xia, X.H. Ju, Z.C. Feng, F.T. Fan, C. Li, Influence of extra-framework Al on the structure of the active iron sites in Fe/ZSM-35, J. Catal. 300(3) (2013) 251-259.[33] P.F. Xie, Z. Ma, T. Meng, C.Y. Huang, C.X. Miao, Y.H. Yue, W. Hua, Z. Gao, Active Fe species of Fe2O3/Fe-Silicalite-1 nanowires in N2O decomposition, J. Mol. Catal. A Chem. 409(1) (2015) 50-58.[34] G.D. Pirngruber, P.K. Roy, R. Prins, The role of autoreduction and of oxygen mobility in N2O decomposition over Fe-ZSM-5, J. Catal. 246(2007) 147-157. |