Enhanced C3+ alcohol synthesis from syngas using KCoMoSx catalysts: effect of the Co-Mo ratio on catalyst performance
Tài liệu tham khảo
Balat, 2009, Recent trends in global production and utilization of bio-ethanol fuel, Applied energy, 86, 2273, 10.1016/j.apenergy.2009.03.015
Issariyakul, 2014, Biodiesel from vegetable oils, Renewable and Sustainable Energy Reviews, 31, 446, 10.1016/j.rser.2013.11.001
Surisetty, 2011, Alcohols as alternative fuels: An overview, Applied Catalysis A: General, 404, 1
Christensen, 2011, Renewable oxygenate blending effects on gasoline properties, Energy & Fuels, 25, 4723, 10.1021/ef2010089
Li, 2019, Radio-frequency thermal plasma-induced novel chainmail-like core-shell MoO2 as highly stable catalyst for converting syngas to higher alcohols, Applied Catalysis B: Environmental, 249, 63, 10.1016/j.apcatb.2019.02.060
Luk, 2017, Status and prospects in higher alcohols synthesis from syngas, Chemical Society Reviews, 46, 1358, 10.1039/C6CS00324A
Liakakou, 2015, K-promoted NiMo catalysts supported on activated carbon for the hydrogenation reaction of CO to higher alcohols: Effect of support and active metal, Applied Catalysis B: Environmental, 165, 296, 10.1016/j.apcatb.2014.10.027
Zaman, 2012, A review of molybdenum catalysts for synthesis gas conversion to alcohols: catalysts, mechanisms and kinetics, Catalysis Reviews, 54, 41, 10.1080/01614940.2012.627224
Santos, 2013, Mechanistic insight into the synthesis of higher alcohols from syngas: the role of K promotion on MoS2 catalysts, ACS Catalysis, 3, 1634, 10.1021/cs4003518
Liu, 2016, Potassium promotion effects in carbon nanotube supported molybdenum sulfide catalysts for carbon monoxide hydrogenation, Catalysis Today, 261, 137, 10.1016/j.cattod.2015.07.003
Wang, 2017, Insight into the promotion mechanism of K and Ni in sulfide molybdenum-based catalysts for higher alcohols synthesis from syngas, Catalysis Communications, 91, 57, 10.1016/j.catcom.2016.12.015
Andersen, 2012, First-Principles Characterization of Potassium Intercalation in Hexagonal 2H-MoS2, The Journal of Physical Chemistry C, 116, 1826, 10.1021/jp206555b
Andersson, 2012, Correlation patterns and effect of syngas conversion level for product selectivity to alcohols and hydrocarbons over molybdenum sulfide based catalysts, Applied Catalysis A: General, 417–418, 119, 10.1016/j.apcata.2011.12.033
Dorokhov, 2013, Conversion of synthesis gas into alcohols on supported cobalt-molybdenum sulfide catalysts promoted with potassium, Kinetics and Catalysis, 54, 243, 10.1134/S0023158413020043
Taborga Claure, 2015, Tuning of higher alcohol selectivity and productivity in CO hydrogenation reactions over K/MoS2 domains supported on mesoporous activated carbon and mixed MgAl oxide, Journal of Catalysis, 324, 88, 10.1016/j.jcat.2015.01.015
Zeng, 2019, Synthesis of mixed alcohols with enhanced C3+ alcohol production by CO hydrogenation over potassium promoted molybdenum sulfide, Applied Catalysis B: Environmental, 246, 232, 10.1016/j.apcatb.2019.01.063
Ao, 2018, Active Centers of Catalysts for Higher Alcohol Synthesis from Syngas: A Review, ACS Catalysis, 8, 7025, 10.1021/acscatal.8b01391
Surisetty, 2012, Comparative study of higher alcohols synthesis over alumina and activated carbon-supported alkali-modified MoS2 catalysts promoted with group VIII metals, Fuel, 96, 77, 10.1016/j.fuel.2011.12.054
Ma, 2010, Ni-decorated carbon nanotube-promoted Ni–Mo–K catalyst for highly efficient synthesis of higher alcohols from syngas, Applied Catalysis B: Environmental, 100, 245, 10.1016/j.apcatb.2010.07.040
Li, 2001, Effect of cobalt promoter on Co–Mo–K/C catalysts used for mixed alcohol synthesis, Applied Catalysis A: General, 220, 21, 10.1016/S0926-860X(01)00646-9
Bao, 2008, Sol–gel Preparation of K–Co–Mo Catalyst and its Application in Mixed Alcohol Synthesis from CO Hydrogenation, Catalysis Letters, 121, 151, 10.1007/s10562-007-9312-5
Huang, 2018, Effects of concentration and microstructure of active phases on the selective hydrodesulfurization performance of sulfided CoMo/Al2O3 catalysts, Applied Catalysis B: Environmental, 220, 42, 10.1016/j.apcatb.2017.08.029
Topsøe, 1981, In situ Mössbauer emission spectroscopy studies of unsupported and supported sulfided Co-Mo hydrodesulfurization catalysts: Evidence for and nature of a Co-Mo-S phase, Journal of Catalysis, 68, 433, 10.1016/0021-9517(81)90114-7
Bian, 1999, Structure of Co–K–Mo/γ-Al2O3 catalysts and their catalytic activity for mixed alcohols synthesis, Catalysis today, 51, 187, 10.1016/S0920-5861(99)00021-8
Iranmahboob, 2001, Characterization of K2CO3/Co–MoS2 catalyst by XRD, XPS, SEM, and EDS, Applied surface science, 185, 72, 10.1016/S0169-4332(01)00653-5
Sun, 2004, On the incorporation of nickel and cobalt into MoS2-edge structures, Journal of Catalysis, 226, 32, 10.1016/j.jcat.2004.05.005
Iranmahboob, 2002, K2CO3/Co-MoS2/clay catalyst for synthesis of alcohol: influence of potassium and cobalt, Applied Catalysis A: General, 231, 99, 10.1016/S0926-860X(01)01011-0
Menart, 2012, Thermal decomposition of bulk K-CoMoSx mixed alcohol catalyst precursors and effects on catalyst morphology and performance, Applied Catalysis A: General, 437, 36, 10.1016/j.apcata.2012.06.010
Surisetty, 2010, Synthesis of higher alcohols from synthesis gas over Co-promoted alkali-modified MoS2 catalysts supported on MWCNTs, Applied Catalysis A: General, 385, 153, 10.1016/j.apcata.2010.07.009
Iranmahboob, 2002, Alcohol Synthesis from Syngas over K2CO3/CoS/MoS2 on Activated Carbon, Catalysis Letters, 78, 49, 10.1023/A:1014945032402
Iranmahboob, 2003, Dispersion of alkali on the surface of Co-MoS2/clay catalyst: a comparison of K and Cs as a promoter for synthesis of alcohol, Applied Catalysis A: General, 247, 207, 10.1016/S0926-860X(03)00092-9
Toyoda, 2014, CO hydrogenation on group VI metal–ceria catalysts, Fuel Processing Technology, 125, 86, 10.1016/j.fuproc.2014.03.033
Li, 2019, Nanosheet-structured K–Co–MoS2 catalyst for the higher alcohol synthesis from syngas: Synthesis and activation, Journal of Energy Chemistry, 30, 57, 10.1016/j.jechem.2018.03.019
Sheng, 2015, Effects of excess sulfur source on the formation and photocatalytic properties of flower-like MoS2 spheres by hydrothermal synthesis, Materials Letters, 144, 153, 10.1016/j.matlet.2015.01.056
Siadati, 2006, Open flow hot isostatic pressing assisted synthesis of unsupported MoS2 catalysts, Applied Catalysis A: General, 305, 160, 10.1016/j.apcata.2006.02.056
Wang, 2017, Hydrothermal Synthesis of Carbon-Coated CoS2–MoS2 Catalysts with Enhanced Hydrophobicity and Hydrodeoxygenation Activity, ACS Sustainable Chemistry & Engineering, 5, 8602, 10.1021/acssuschemeng.7b01087
Labruyère, 1997, High-Pressure Temperature-Programmed Reduction of Sulfided Catalysts, Journal of Catalysis, 167, 464, 10.1006/jcat.1997.1602
McGarvey, 1994, An Investigation of the Reduction Behavior of MoS2/Al2O3 and the Subsequent Detection of Hydrogen on the Surface, Journal of Catalysis, 148, 149, 10.1006/jcat.1994.1196
Mangnus, 1995, Temperature-Programmed Reduction and HDS Activity of Sulfided Transition Metal Catalysts: Formation of Nonstoichiometric Sulfur, Journal of Catalysis, 151, 178, 10.1006/jcat.1995.1020
Yoosuk, 2008, Highly active MoS2, CoMoS2 and NiMoS2 unsupported catalysts prepared by hydrothermal synthesis for hydrodesulfurization of 4,6-dimethyldibenzothiophene, Catalysis Today, 130, 14, 10.1016/j.cattod.2007.07.003
Scheffer, 1990, A temperature-programmed reduction study of sulfided Co-Mo/Al2O3 hydrodesulfurization catalysts, Journal of Catalysis, 121, 31, 10.1016/0021-9517(90)90214-5
Xin, 2020, In-Situ Growth of High-Content 1T Phase MoS2 Confined in the CuS Nanoframe for Efficient Photocatalytic Hydrogen Evolution, Applied Catalysis B: Environmental, 10.1016/j.apcatb.2020.118773
Müller, 1991, In situ raman investigation of hydrodesulphurization catalysts, Applied Catalysis, 77, 243, 10.1016/0166-9834(91)80069-9
Rasamani, 2017, Interlayer-expanded MoS2, Materials Today, 20, 83, 10.1016/j.mattod.2016.10.004
Shi, 2013, On the Synergetic Catalytic Effect in Heterogeneous Nanocomposite Catalysts, Chemical Reviews, 113, 2139, 10.1021/cr3002752
Ternan, 1988
Smith, 1984, A chain growth scheme for the higher alcohols synthesis, Journal of Catalysis, 85, 428, 10.1016/0021-9517(84)90232-X
Smith, 1990, Kinetic modelling of higher alcohol synthesis over alkali-promoted Cu/ZnO and MoS2 catalysts, Chemical Engineering Science, 45, 2639, 10.1016/0009-2509(90)80153-6
Li, 2005, Ni/ADM: a high activity and selectivity to C2+OH catalyst for catalytic conversion of synthesis gas to C1-C5 mixed alcohols, Topics in Catalysis, 32, 233, 10.1007/s11244-005-2901-x
Elavarasan, 2009, Statistical optimization of process variables in batch alkylation of p-cresol with tert-butyl alcohol using ionic liquid catalyst by response surface methodology, Chemical Engineering Journal, 155, 355, 10.1016/j.cej.2009.07.019