Methane adsorption and dissociation on iron oxide oxygen carriers: the role of oxygen vacancies.
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Jonathan A. Fan | L. Fan | Dikai Xu | L. Qin | Zhuo Cheng | Mengqing Guo | Jonathan A. Fan
[1] Qiming Zhang,et al. DFT+U study of ultrathin α-Fe2O3 nanoribbons from (110) and (104) surfaces , 2016 .
[2] Dong H. Zhang,et al. CH4 dissociation on Ni(111): a quantum dynamics study of lattice thermal motion. , 2015, Physical chemistry chemical physics : PCCP.
[3] Chenghua Sun,et al. Experimental and theoretical study of the oxidation of ventilation air methane over Fe2O3 and CuO. , 2015, Physical chemistry chemical physics : PCCP.
[4] Jonathan A. Fan,et al. Nanostructure formation mechanism and ion diffusion in iron–titanium composite materials with chemical looping redox reactions , 2015 .
[5] A. Lyngfelt,et al. Comprehensive study of Mn–Fe–Al oxygen-carriers for chemical-looping with oxygen uncoupling (CLOU) , 2015 .
[6] T. Nguyen,et al. Effect of oxygen vacancy on the adsorption of O 2 on anatase TiO 2 (001): A DFT-based study , 2015 .
[7] C. Lo,et al. Propagation of Olefin Metathesis to Propene on WO3 Catalysts: A Mechanistic and Kinetic Study , 2015 .
[8] Liang-Shih Fan,et al. Shale gas-to-syngas chemical looping process for stable shale gas conversion to high purity syngas with a H2 : CO ratio of 2 : 1 , 2014 .
[9] N. D. de Leeuw,et al. A DFT study of the structures, stabilities and redox behaviour of the major surfaces of magnetite Fe₃O₄. , 2014, Physical chemistry chemical physics : PCCP.
[10] Saurabh Bhavsar,et al. Chemical looping: To combustion and beyond , 2014 .
[11] B. Jackson,et al. Quantum state-resolved CH4 dissociation on Pt(111): coverage dependent barrier heights from experiment and density functional theory. , 2013, Physical chemistry chemical physics : PCCP.
[12] R. Breault,et al. Kinetics of the reduction of hematite (Fe2O3) by methane (CH4) during chemical looping combustion: A global mechanism , 2013 .
[13] Ling Nan Wu,et al. Theoretical Study on Reactivity of Fe-Based Oxygen Carrier with CH4 during Chemical Looping Combustion , 2013 .
[14] Yang Wang,et al. Role of point defects on the reactivity of reconstructed anatase titanium dioxide (001) surface , 2013, Nature Communications.
[15] C. Lo,et al. Effect of Support Structure and Composition on the Catalytic Activity of Pt Nanoclusters for Methane Dehydrogenation , 2013 .
[16] Zhuo Cheng,et al. Carbon dioxide activation and dissociation on ceria (110): a density functional theory study. , 2012, The Journal of chemical physics.
[17] L. Fan,et al. Chemical looping processes for CO2 capture and carbonaceous fuel conversion – prospect and opportunity , 2012 .
[18] J. I. Juaristi,et al. Dissociative and non-dissociative adsorption dynamics of N2 on Fe(110). , 2012, Physical chemistry chemical physics : PCCP.
[19] C. Lo,et al. Platinum Nanoclusters Exhibit Enhanced Catalytic Activity for Methane Dehydrogenation , 2012, Topics in Catalysis.
[20] C. Lo,et al. Formation of Active Sites on WO3 Catalysts: A Density Functional Theory Study of Olefin Metathesis , 2012 .
[21] Graeme Henkelman,et al. Paths to which the nudged elastic band converges , 2011, J. Comput. Chem..
[22] Liang-Shih Fan,et al. Chemical Looping Systems for Fossil Energy Conversions , 2010 .
[23] G. Kroes,et al. Quantum dynamics of dissociative chemisorption of CH(4) on Ni(111): Influence of the bending vibration. , 2010, The Journal of chemical physics.
[24] Liang-Shih Fan,et al. Chemical Looping Systems for Fossil Energy Conversions: Fan/Chemical Looping Systems , 2010 .
[25] Donghai Mei,et al. Effects of hydration and oxygen vacancy on CO2 adsorption and activation on beta-Ga2O3(100). , 2010, Langmuir : the ACS journal of surfaces and colloids.
[26] B. Jackson,et al. Methane dissociation on Ni(111): a new understanding of the lattice effect. , 2009, Physical review letters.
[27] Liang-Shih Fan,et al. Syngas chemical looping gasification process: oxygen carrier particle selection and performance , 2009 .
[28] Annabella Selloni,et al. Surface and subsurface oxygen vacancies in anatase TiO 2 and differences with rutile , 2009 .
[29] Haibin Li,et al. Synthesis Gas Generation by Chemical-Looping Reforming Using Ce-Based Oxygen Carriers Modified with Fe, Cu, and Mn Oxides , 2009 .
[30] Juan Adánez,et al. Synthesis gas generation by chemical-looping reforming in a batch fluidized bed reactor using Ni-based oxygen carriers , 2008 .
[31] C. Lund,et al. DFT models for active sites on high temperature water-gas shift catalysts , 2008 .
[32] A. L. Utz,et al. Bond-Selective Control of a Heterogeneously Catalyzed Reaction , 2008, Science.
[33] Juan Adánez,et al. Reduction Kinetics of Cu-, Ni-, and Fe-Based Oxygen Carriers Using Syngas (CO + H2) for Chemical-Looping Combustion , 2007 .
[34] B. Jackson,et al. Methane dissociation on Ni(111): the role of lattice reconstruction. , 2007, Physical review letters.
[35] Stefan Grimme,et al. Semiempirical GGA‐type density functional constructed with a long‐range dispersion correction , 2006, J. Comput. Chem..
[36] A. L. Utz,et al. Preference for Vibrational over Translational Energy in a Gas-Surface Reaction , 2004, Science.
[37] Jürgen Hafner,et al. First-principles calculation of the structure and magnetic phases of hematite , 2004 .
[38] A. Abad,et al. Selection of Oxygen Carriers for Chemical-Looping Combustion , 2004 .
[39] A. Kiejna. Vacancy formation and O adsorption at the Al(111) surface , 2003 .
[40] D. Ellis,et al. Defects and Charge Transport near the Hematite (0001) Surface: An Atomistic Study of Oxygen Vacancies , 2002 .
[41] A. Lyngfelt,et al. The use of iron oxide as an oxygen carrier in chemical-looping combustion of methane with inherent separation of CO2 , 2001 .
[42] G. Henkelman,et al. A climbing image nudged elastic band method for finding saddle points and minimum energy paths , 2000 .
[43] Tadaaki Shimizu,et al. Thermochemical methane reforming using a reactive WO3/W redox system , 2000 .
[44] G. Kresse,et al. From ultrasoft pseudopotentials to the projector augmented-wave method , 1999 .
[45] Burke,et al. Generalized Gradient Approximation Made Simple. , 1996, Physical review letters.
[46] Kresse,et al. Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set. , 1996, Physical review. B, Condensed matter.
[47] G. Kresse,et al. Efficiency of ab-initio total energy calculations for metals and semiconductors using a plane-wave basis set , 1996 .
[48] Hafner,et al. Ab initio molecular dynamics for liquid metals. , 1995, Physical review. B, Condensed matter.
[49] P. Blöchl. Projector augmented-wave method. , 1994, Physical review. B, Condensed matter.
[50] Blöchl,et al. Improved tetrahedron method for Brillouin-zone integrations. , 1994, Physical review. B, Condensed matter.
[51] O. Gunnarsson,et al. Density-functional calculation of effective Coulomb interactions in metals. , 1991, Physical review. B, Condensed matter.
[52] R. E. Watson,et al. Relativistic calculations of4fexcitation energies in the rare-earth metals: Further results , 1978 .
[53] T. Zoltai,et al. Refinement of the hematite structure , 1966 .
[54] W. Gordy. A Re‐Evaluation of the Covalent Radii of Some of the Elements , 1947 .
[55] J. Frenkel. Theorie der Adsorption und verwandter Erscheinungen , 1924 .
[56] Liang-Shih Fan,et al. Chemical‐looping technology platform , 2015 .
[57] Liang-Shih Fan,et al. Continuous high purity hydrogen generation from a syngas chemical looping 25 kWth sub-pilot unit with 100% carbon capture , 2013 .
[58] D. Ghosh,et al. Reduction of Ferric Oxide Pellets with Methane , 1986 .