[1] J. Kopyscinski, J.T. Schildhauer, M.A. Biollaz, Production of synthetic natural gas (SNG) from coal and dry biomass-a technology review from 1950 to 2009, Fuel 89(8) (2010) 1763-1783.[2] M. Tao, Z. Xin, X. Meng, Z.C. Bian, Y.H. Lv, Highly dispersed nickel within mesochannels of SBA-15 for CO methanation with enhanced activity and excellent thermostability, Fuel 188(2017) 267-276.[3] Y. Okamoto, S.Y. Kawano, M. Satoh, T. Kubota, Preparation of Co-Mo/Al2O3 model sulfide catalysts for hydrodesulfurization and their application to the study of the effects of catalyst preparation, J. Catal. 217(1) (2003) 12-22.[4] M. Nagai, K. Matsuda, Low-temperature water-gas shift reaction over cobalt-molybdenum carbide catalyst, J. Catal. 238(2) (2006) 489-496.[5] P. Afanasiev, The influence of reducing and sulfiding conditions on the properties of unsupported. MoS2-based catalysts, J. Catal. 269(2) (2010) 269-280.[6] B.W. Wang, G.Z. Ding, Y.G. Shang, J. Lv, H.Y. Wang, E.D. Wang, Z.H. Li, X.B. Ma, S.D. Qin, Q. Sun, Effects of MoO3 loading and calcination temperature on the activity of the sulphur-resistant methanation catalyst MoO3/γ-Al2O3, Appl. Catal. A Gen. 431-432(2012) 144-150.[7] B.W. Wang, Y.G. Shang, G.Z. Ding, J. Lv, H.Y. Wang, E.D. Wang, Z.H. Li, X.B. Ma, S.D. Qin, Q. Sun, Effect of the ceria-alumina composite support on the Mo-based catalyst's sulfur-resistant activity for the synthetic natural gas process, React. Kinet. Mech. Catal. 106(2) (2012) 495-506.[8] H.Y. Wang, Z. H. L., B.W. Wang, X.B. Ma, S.D. Qin, S.L. Sun, Q. Sun, Precursor effect on catalytic properties of Mo-based catalyst for sulfur-resistant methanation, Korean J. Chem. Eng. 31(12) (2014) 2157-2161.[9] J.L. Dubois, S. Fujieda, Effects of boron in Co-Mo/B-Al2O3 hydrotreatment catalysts, Catal. Today 29(1-4) (1996) 191-195.[10] B.W. Wang, Y.Q. Yao, M.H. Jiang, Z.H. Li, X.B. Ma, S.D. Qin, Q. Sun, Effect of cobalt and its adding sequence on the catalytic performance of MoO3/Al2O3 toward boron methanation, J. Energy Chem. 23(1) (2014) 35-42.[11] B.W. Wang, D.J. Meng, W.H. Wang, Z.H. Li, X.B. Ma, Effect of citric acid addition on the MoO3/CeO2-Al2O3 catalyst for sulfur-resistant methanation, J. Fuel Chem. Technol. 44(12) (2016) 1479-1484.[12] U. Usman, M. Takaki, T. Kubota, Y. Okamoto, Effect of boron addition on a MoO3/Al2O3 catalyst, Appl. Catal. A Gen. 286(1) (2005) 148-154.[13] H. Morihige, Y. Akai, Effect of boron addition on the state and dispersion of Mo supported on alumina, Bull. Soc. Chim. Belg. 104(4-5) (1995) 253-257.[14] Usman, T. Kubota, Y. Araki, K. Ishida, Y. Okamoto, The effect of boron addition on the hydrodesulfurization activity of MoS2/Al2O3 and Co-MoS2/Al2O3 catalysts, J. Catal. 227(2) (2004) 523-529.[15] D. Ferdous, A.K. Dalai, J. Adjaye, A series of NiMo/Al2O3 catalysts containing boron and phosphorus:part Ⅱ. Hydrodenitrogenation and hydrodesulfurization using heavy gas oil derived from Athabasca bitumen, Appl. Catal. A Gen. 260(2) (2004) 153-162.[16] R. Palcheva, L. Kaluza, A. Spojakina, Jiratova, G. Tyuliev, NiMo/gamma-Al2O3 catalysts from Ni heteropolyoxomolybdate and effect of alumina modification by B, Co, or Ni, Chin. J. Catal. 33(6) (2012) 952-961.[17] Usman, T. Kubota, Y. Okamoto, Effect of boron addition on the intrinsic activity of Al2O3-supported cobalt-tungsten and cobalt-molybdenum sulfide catalysts for the hydrodesulfurization of thiophene, Bull. Chem. Soc. Jpn. 79(4) (2016) 637-643.[18] W.B. Chen, F. Mauge, J.V. Gestl, H. Nie, D.D. Li, X.Y. Long, Effect of modification of the alumina acidity on the properties of supported Mo and CoMo sulfide catalysts, J. Catal. 304(4) (2013) 47-62.[19] Y.V. Vatutina, O.V. Klimov, A. Nadeina, I.G. Danilova, E.Y. Gerasimov, I.P. Prosvirin, Influence of boron addition to alumina support by kneading on morphology and activity of HDS catalysts, Appl. Catal. B Environ. 199(2016) 23-32.[20] M. Lewandowski, Z. Sarbak, The effect of boron addition on hydrodesulfurization and hydrodenitrogenation activity of NiMo/Al2O3 catalysts, Fuel 79(5) (1999) 487-495.[21] D.W. Zhuang, Q. Kang, S.S. Muir, X.D. Yao, H.B. Dai, G.L. Ma, P. Wang, Evaluation of a cobalt-molybdenum-boron catalyst for hydrogen generation of alkaline sodium borohydride solution-aluminum powder system, J. Power Sources 224(4) (2013) 304-311.[22] D.W. Zhuang, J.J. Zhang, i H.B. Da, P. Wang, Hydrogen generation from hydrolysis of solid sodium borohydride promoted by a cobalt-molybdenum-boron catalyst and aluminum powder, Int. J. Hydrog. Energy 38(25) (2013) 10845-10850.[23] J. Ni, L.W. Chen, J.Y. Lin, S. Kawi, Carbon deposition on borated alumina supported nano-sized Ni catalysts for dry reforming of CH4, Nano Energy 1(5) (2012) 674-686.[24] M.W. Ngobeni, A.F. Carley, M.S. Scurrell, C.P. Nicolaides, The effects of boron and silver on the oxygen-free conversion of methane over Mo/H-ZSM-5 catalysts, J. Mol. Catal. A Chem. 305(1-2) (2009) 40-46.[25] M.H. Jiang, B.W. Wang, J. Lv, H.Y. Wang, Z.H. Li, X.B. Ma, S.D. Qin, Q. Sun, Effect of sulfidation temperature on the catalytic activity of MoO3/CeO2-Al2O3 toward sulfur-resistant methanation, Appl. Catal. A Gen. 466(10) (2013) 224-232.[26] M.H. Jiang, B.W. Wang, Y.Q. Yao, Z.H. Li, X.B. Ma, S.D. Qin, Q. Sun, A comparative study of CeO2-Al2O3 support prepared with different methods and its application on MoO3/CeO2-Al2O3 catalyst for sulfur-resistant methanation, Appl. Surf. Sci. 285(1) (2013) 267-277.[27] P. Berteau, B. Delmon, Modified aluminas relationship between activity in 1-butanol dehydration and acidity measured by NH3-TPD, Catal. Today 5(2) (1989) 121-137.[28] A.N. Pour, A.M. Rashidi, K.J. Jozani, A. Mohajri, P. Khorami, Support effects on the chemical property and catalytic activity of Co-Mo HDS catalyst in sulfur recovery, J. Nat. Gas Chem. 19(1) (2010) 91-95.[29] S.L. Gonzalez-Cortes, T.C. Xiao, P.M.F.J. Costa, B. Fontal, M.L.H. Green, Urea-organic matrix method:an alternative approach to prepare Co-MoS2/γ-Al2O3 HDS catalyst, Appl. Catal. A Gen. 270(1) (2004) 209-222. |