Structural evolution of robust Ni3Fe1 alloy on Al2O3 in dry reforming of methane: Effect of iron-surplus strategy from Ni1Fe1 to Ni3Fe1
暂无分享,去创建一个
Ruifeng Li | Xiaoliang Yan | Sha Li | Qianqian Wang | Min Cao | Feng Yu | Zhiwen Song | Li Qiu | Yubin Li
[1] Ruifeng Li,et al. Effect of Interstitial Carbon Atoms in Core-shell Ni3ZnC0.7/Al2O3 Catalyst for High-performance Dry Reforming of Methane , 2022, Applied Catalysis B: Environmental.
[2] T. Marks,et al. Coking Can Enhance Product Yields in the Dry Reforming of Methane , 2022, ACS Catalysis.
[3] Hongbo Zhang,et al. Evidence of undissociated CO2 involved in the process of C-H bond activation in dry reforming of CH4 , 2022, Journal of Catalysis.
[4] Xiaodong Wang,et al. Influence of the encapsulation degree of Fe0 active sites on performance of garnets for chemical looping partial oxidation of CH4 , 2022, Applied Catalysis B: Environmental.
[5] Chen Zhao,et al. Ultra-durable Ni-Ir/MgAl2O4 catalysts for dry reforming of methane enabled by dynamic balance between carbon deposition and elimination , 2022, Chem Catalysis.
[6] Tiefeng Wang,et al. Boosting Amination of 1‐Octanol to 1‐Octylamine via Metal‐Metal Oxide Interactions in NixFe1/Al2O3 Catalysts , 2022, ChemCatChem.
[7] V. Galvita,et al. Looking inside a Ni-Fe/MgAl2O4 catalyst for methane dry reforming via Mössbauer spectroscopy and in situ QXAS , 2022, Applied Catalysis B: Environmental.
[8] K. Booksh,et al. Grafted Nickel-Promoter Catalysts for Dry Reforming of Methane Identified through High-Throughput Experimentation , 2021, Applied Catalysis A: General.
[9] Sunkyu Kim,et al. Yolk–Shell Pt-NiCe@SiO2 Single-Atom-Alloy Catalysts for Low-Temperature Dry Reforming of Methane , 2021, ACS Catalysis.
[10] M. Centeno,et al. IR spectroscopic insights into the coking-resistance effect of potassium on nickel-based catalyst during dry reforming of methane , 2021 .
[11] H. Jeong,et al. Enhancing Thermocatalytic Activities via Up-shift of the d-Band Center of Exsolved Co-Ni-Fe Ternary Alloy Nanoparticles for Dry Reforming of Methane. , 2021, Angewandte Chemie.
[12] Yi Cui,et al. Insights into the Nonthermal Effects of Light in Dry Reforming of Methane to Enhance the H2/CO Ratio Near Unity over Ni/Ga2O3 , 2021 .
[13] Xiaoqing Pan,et al. The effects of stoichiometry on the properties of exsolved Ni‐Fe alloy nanoparticles for dry methane reforming , 2020 .
[14] Lilong Jiang,et al. Ni–Fe/Mg(Al)O alloy catalyst for carbon dioxide reforming of methane: Influence of reduction temperature and Ni–Fe alloying on coking , 2020, International Journal of Hydrogen Energy.
[15] F. Studt,et al. Electronic Supporting Information – Structural dynamics in Ni-Fe catalysts during CO2 methanation – role of iron oxide clusters , 2020 .
[16] Q. Fu,et al. Reaction-induced strong metal-support interactions between metals and inert boron nitride nanosheets. , 2020, Journal of the American Chemical Society.
[17] S. Joo,et al. Highly active dry methane reforming catalysts with boosted in situ grown Ni-Fe nanoparticles on perovskite via atomic layer deposition , 2020, Science Advances.
[18] Wenjun Yan,et al. Improved Effect of Fe on the Stable NiFe/Al2O3 Catalyst in Low-Temperature Dry Reforming of Methane , 2020 .
[19] S. Kaytakoğlu,et al. Catalytic performance of silica covered bimetallic nickel-iron encapsulated core-shell microspheres for hydrogen production , 2020 .
[20] Xinggui Zhou,et al. Dry reforming of methane on Ni-Fe-MgO catalysts: Influence of Fe on carbon-resistant property and kinetics , 2020 .
[21] C. Yavuz,et al. Dry reforming of methane by stable Ni–Mo nanocatalysts on single-crystalline MgO , 2020, Science.
[22] C. Vogt,et al. Structure Sensitivity in Steam and Dry Methane Reforming over Nickel: Activity and Carbon Formation , 2020 .
[23] K. Wilson,et al. Atomically dispersed nickel as coke-resistant active sites for methane dry reforming , 2019, Nature Communications.
[24] B. Hatton,et al. Nickel@Siloxene catalytic nanosheets for high-performance CO2 methanation , 2019, Nature Communications.
[25] P. Liu,et al. Highly efficient and stable Ni/CeO2-SiO2 catalyst for dry reforming of methane: Effect of interfacial structure of Ni/CeO2 on SiO2 , 2019, Applied Catalysis B: Environmental.
[26] Junfeng Zhang,et al. Insight into the effects of the oxygen species over Ni/ZrO2 catalyst surface on methane reforming with carbon dioxide , 2019, Applied Catalysis B: Environmental.
[27] C. Müller,et al. Supported Bimetallic NiFe Nanoparticles through Colloid Synthesis for Improved Dry Reforming Performance , 2017 .
[28] C. Detavernier,et al. Controlling the stability of a Fe-Ni reforming catalyst : structural organization of the active components , 2017 .
[29] C. Müller,et al. Molecularly Tailored Nickel Precursor and Support Yield a Stable Methane Dry Reforming Catalyst with Superior Metal Utilization. , 2017, Journal of the American Chemical Society.
[30] José M. Lopes,et al. The promoting effect of Ce in the CO2 methanation performances on NiUSY zeolite: A FTIR In Situ/Operando study , 2017 .
[31] C. Müller,et al. Cooperativity and Dynamics Increase the Performance of NiFe Dry Reforming Catalysts. , 2017, Journal of the American Chemical Society.
[32] C. Müller,et al. Dry-reforming of methane over bimetallic Ni–M/La2O3 (M = Co, Fe): The effect of the rate of La2O2CO3 formation and phase stability on the catalytic activity and stability , 2016 .
[33] Guy Marin,et al. Carbon gasification from Fe–Ni catalysts after methane dry reforming , 2016 .
[34] V. Galvita,et al. Enhanced Carbon-Resistant Dry Reforming Fe-Ni Catalyst: Role of Fe , 2015 .
[35] Lichun Dong,et al. Plasma-assisted catalytic dry reforming of methane: Highly catalytic performance of nickel ferrite nanoparticles embedded in silica , 2015 .
[36] Shudong Wang,et al. In situ FTIR spectroscopic study of the CO2 methanation mechanism on Ni/Ce0.5Zr0.5O2 , 2014 .
[37] K. Tomishige,et al. Catalytic performance and characterization of Ni-Fe catalysts for the steam reforming of tar from biomass pyrolysis to synthesis gas , 2011 .
[38] S. C. Dhingra,et al. K-, CeO2-, and Mn-promoted Ni/Al2O3 catalysts for stable CO2 reforming of methane , 2005 .
[39] J. Nørskov,et al. Atomic-scale imaging of carbon nanofibre growth , 2004, Nature.
[40] J. Nørskov,et al. Steam Reforming and Graphite Formation on Ni Catalysts , 2002 .
[41] M. Daturi,et al. IR study of polycrystalline ceria properties in oxidised and reduced states , 1999 .
[42] X. Verykios,et al. Carbon dioxide reforming of methane to synthesis gas over supported Ni catalysts , 1994 .
[43] H. Wise,et al. Hydrogenation of surface carbon on alumina-supported nickel , 1979 .
[44] J. Rostrup-Nielsen. Mechanisms of carbon formation on nickel-containing catalysts , 1977 .
[45] Y. Sekine,et al. Effects of alloying for steam or dry reforming of methane: a review of recent studies , 2022, Catalysis Science & Technology.