Dry reforming of methane over silica zeolite-encapsulated Ni-based catalysts: Effect of preparation method, support structure and Ni content on catalytic performance
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[1] Longfeng Zhu,et al. Recent strategies for synthesis of metallosilicate zeolites , 2022, Catalysis Today.
[2] J. Ran,et al. Unrevealing the influence that preparation and reaction parameters have on Ni/Al2O3 catalysts for dry reforming of methane , 2022, International Journal of Hydrogen Energy.
[3] Guojie Zhang,et al. Nitrogen-doped porous carbons derived from sustainable biomass via a facile post-treatment nitrogen doping strategy: Efficient CO2 capture and DRM , 2022, International Journal of Hydrogen Energy.
[4] Xiaolei Fan,et al. Developing Silicalite-1 Encapsulated Ni Nanoparticles as Sintering-/Coking-Resistant Catalysts for Dry Reforming of Methane , 2022, SSRN Electronic Journal.
[5] F. Frusteri,et al. Promotional effect of addition of ceria over yttria-zirconia supported Ni based catalyst system for hydrogen production through dry reforming of methane , 2022, International Journal of Hydrogen Energy.
[6] F. Xiao,et al. Zeolite nanosheets for catalysis. , 2022, Chemical Society reviews.
[7] M. Rahimpour,et al. Biogas reforming over La-promoted Ni/SBA-16 catalyst for syngas production: Catalytic structure and process activity investigation , 2022, International Journal of Hydrogen Energy.
[8] H. D. Setiabudi,et al. Optimization of boron dispersion on fibrous-silica-nickel catalyst for enhanced CO2 hydrogenation to methane , 2022, International Journal of Hydrogen Energy.
[9] Haoran Du,et al. CO2 conversion via dry reforming of methane on a core-shell Ru@SiO2 catalyst , 2022, Journal of CO2 Utilization.
[10] I. Hussain,et al. Enhancing resistance of carbon deposition and reaction stability over nickel loaded fibrous silica-alumina (Ni/FSA) for dry reforming of methane , 2022, International Journal of Hydrogen Energy.
[11] Jun Wang,et al. Dry reforming of methane over Mn-Ni/attapulgite: Effect of Mn content on the active site distribution and catalytic performance , 2022, Fuel.
[12] W. Miran,et al. Methane dry reforming with CO2 over ceria supported Ni catalyst prepared by reverse microemulsion synthesis , 2022, Fuel.
[13] Hyung-Ki Min,et al. Nickel on two-dimensional ITQ-2 zeolite as a highly active catalyst for carbon dioxide reforming of methane , 2022, Journal of CO2 Utilization.
[14] A. Al-Fatesh,et al. Effect of Cerium Promoters on an MCM-41-Supported Nickel Catalyst in Dry Reforming of Methane , 2021, Industrial & Engineering Chemistry Research.
[15] Peng Wu,et al. Synthesis of Micro-Mesoporous Ti-MOR/Silica Composite Spheres in Oil-in-water Microemulsion System , 2021, Chemical Research in Chinese Universities.
[16] Jun Wang,et al. Steam reforming of methanol for hydrogen production over attapulgite-based zeolite-supported Cu-Zr catalyst , 2021, Fuel.
[17] Hongyan Pan,et al. Alkaline KMnO4 solution pretreat hydrochar to prepare high ultra-micropore volume carbon for CH4 enrichment from low-concentration coalbed methane , 2021 .
[18] J. Choung,et al. Effects of spatially confined nickel nanoparticles in surface-pretreated hydrophobic SBA-15 for dry reforming of CH4 with CO2 , 2021 .
[19] Shengping Wang,et al. Effect of Ce doping on the catalytic performance of x NiCeO y @SiO 2 catalysts for dry reforming of methane , 2021, Asia-Pacific Journal of Chemical Engineering.
[20] S. Kawi,et al. A review on roles of pretreatment atmospheres for the preparation of efficient Ni-based catalysts , 2021, Catalysis Today.
[21] D. Ferri,et al. Stable Palladium Oxide Clusters Encapsulated in Silicalite-1 for Complete Methane Oxidation , 2021, ACS Catalysis.
[22] Changwei Hu,et al. Dry reforming of methane over Ni–ZrOx catalysts doped by manganese: On the effect of the stability of the structure during time on stream , 2021 .
[23] Jun Wang,et al. Hydrogen production by ethanol steam reforming over M-Ni/sepiolite (M = La, Mg or Ca) catalysts , 2021, International Journal of Hydrogen Energy.
[24] Xiaolei Fan,et al. An insight into the effects of synthesis methods on catalysts properties for methane reforming , 2021 .
[25] Hyung-Ki Min,et al. Nitrided Ni/N-zeolites as efficient catalysts for the dry reforming of methane , 2021 .
[26] Yang Lou,et al. Confinement of subnanometric PdCo bimetallic oxide clusters in zeolites for methane complete oxidation , 2021 .
[27] Yuhan Sun,et al. Design of a carbon-resistant Ni@S-2 reforming catalyst: Controllable Ni nanoparticles sandwiched in a peasecod-like structure , 2021 .
[28] Yongjun Xu,et al. Ni@ZrO2 yolk-shell catalyst for CO2 methane reforming: Effect of Ni@SiO2 size as the hard-template. , 2021, Journal of colloid and interface science.
[29] Xinhua Liang,et al. Enhanced activity and stability of MgO-promoted Ni/Al2O3 catalyst for dry reforming of methane: Role of MgO , 2021 .
[30] Y. Arafat,et al. In situ auto-gasification of coke deposits over a novel Ni-Ce/W-Zr catalyst by sequential generation of oxygen vacancies for remarkably stable syngas production via CO2-reforming of methane , 2021 .
[31] Jun Wang,et al. Recent advances during CH4 dry reforming for syngas production: A mini review , 2020 .
[32] Yishuang Wang,et al. Hydrogen production from acetic acid steam reforming over Ti-modified Ni/Attapulgite catalysts , 2020 .
[33] Tao Jiang,et al. Preparation of vanadium-MFI zeolite for oxidative desulfurization with the aid of ammonium carbonate , 2020 .
[34] G. Borodi,et al. Combined steam and dry reforming of methane for syngas production from biogas using bimodal pore catalysts , 2020 .
[35] D. Vo,et al. Enhanced dry reforming of methane over mesostructured fibrous Ni/MFI zeolite: Influence of preparation methods , 2020 .
[36] A. A. Jalil,et al. Methane dry reforming over Ni/fibrous SBA-15 catalysts: Effects of support morphology (rod-liked F-SBA-15 and dendritic DFSBA-15) , 2020 .
[37] Zhongpan Hu,et al. Ultrasmall PtZn bimetallic nanoclusters encapsulated in silicalite-1 zeolite with superior performance for propane dehydrogenation , 2020 .
[38] Miao Wang,et al. Hollow Hierarchical Silicalite-1 Zeolite Encapsulated PtNi Bimetals for Selective Hydroconversion of Methyl Stearate into Aviation Fuel Range Alkanes , 2020 .
[39] O. Terasaki,et al. Subnanometer Bimetallic Pt-Zn Clusters in Zeolites for Propane Dehydrogenation. , 2020, Angewandte Chemie.
[40] Shih‐Yuan Lu,et al. Bimetallic Metal-Organic Framework-derived Hybrid Nanostructures as High-Performance Catalysts for Methane Dry Reforming. , 2020, ACS applied materials & interfaces.
[41] R. Amal,et al. Inducing Ni phyllosilicate formation over a carbon fiber support as a catalyst for the CO2 reforming of methane , 2020 .
[42] Chi Cheng Chong,et al. Development of nanosilica-based catalyst for syngas production via CO2 reforming of CH4: A review , 2020 .
[43] Zifeng Yan,et al. Superior catalytic performance of micro-mesoporous Beta-SBA-15 composite with a high indexed isomerization factor in hydroisomerization of n-heptane , 2019, Fuel.
[44] Liyi Shi,et al. Methane dry reforming over boron nitride interface-confined and LDHs-derived Ni catalysts , 2019, Applied Catalysis B: Environmental.
[45] Yishuang Wang,et al. Hydrogen production from steam reforming ethanol over Ni/attapulgite catalysts - Part I: Effect of nickel content , 2019, Fuel Processing Technology.
[46] Sunit K. Singh,et al. CO2 reforming of CH4: Effect of Gd as promoter for Ni supported over MCM-41 as catalyst , 2019, Renewable Energy.
[47] Chi Cheng Chong,et al. Hydrogen production via CO2 reforming of CH4 over low-cost Ni/SBA-15 from silica-rich palm oil fuel ash (POFA) waste , 2019, International Journal of Hydrogen Energy.
[48] S. O. Kasim,et al. Influence of Nature Support on Methane and CO2 Conversion in a Dry Reforming Reaction over Nickel-Supported Catalysts , 2019, Materials.
[49] Q. Lin,et al. Effect of thermal induction temperature on re-dispersion behavior of Ni nanoparticles over Ni/SBA-15 for dry reforming of methane , 2019, Applied Surface Science.
[50] A. Borgna,et al. Zeolite–supported nickel phyllosilicate catalyst for C O hydrogenolysis of cyclic ethers and polyols , 2018, Applied Catalysis B: Environmental.
[51] Kus Hidajat,et al. Silica–Ceria sandwiched Ni core–shell catalyst for low temperature dry reforming of biogas: Coke resistance and mechanistic insights , 2018, Applied Catalysis B: Environmental.
[52] S. Dai,et al. Confined Ultrathin Pd-Ce Nanowires with Outstanding Moisture and SO2 Tolerance in Methane Combustion. , 2018, Angewandte Chemie.
[53] Jun Luo,et al. High-Quality Single-Crystalline MFI-Type Nanozeolites: A Facile Synthetic Strategy and MTP Catalytic Studies , 2018 .
[54] P. Costa,et al. Promotion effect of zirconia on Mg(Ni,Al)O mixed oxides derived from hydrotalcites in CO2 methane reforming , 2018 .
[55] Junhui Li,et al. Transalkylation Properties of Hierarchical MFI and MOR Zeolites: Direct Synthesis over Modulating the Zeolite Grow Kinetics with Controlled Morphology , 2018, Catalysis Letters.
[56] Chi Cheng Chong,et al. Comparative study of Ni-Ce loading method: Beneficial effect of ultrasonic-assisted impregnation method in CO2 reforming of CH4 over Ni-Ce/SBA-15 , 2018 .
[57] Shaomin Liu,et al. Bimetallic Ni-M (M = Co, Cu and Zn) supported on attapulgite as catalysts for hydrogen production from glycerol steam reforming , 2018 .
[58] K. K. Shah,et al. A study on the synthesis, characterization and catalytic activity of ruthenium-substituted MFI (Mobil Five) zeolite , 2017, Bulletin of Materials Science.
[59] A. Akbarzadeh,et al. A study on the synthesis of [Fe,B]-MFI zeolites using hydrothermal method and investigation of their properties , 2017 .
[60] V. Valtchev,et al. One-pot synthesis of silanol-free nanosized MFI zeolite. , 2017, Nature materials.
[61] Yi Zhang,et al. Dry reforming of methane over Ni/MgO-Al 2 O 3 catalysts prepared by two-step hydrothermal method , 2016 .
[62] G. Xu,et al. Dynamic Oxygen on Surface: Catalytic Intermediate and Coking Barrier in the Modeled CO2 Reforming of CH4 on Ni (111) , 2016 .
[63] K. Hidajat,et al. Anti‐Coking Ni/SiO2 Catalyst for Dry Reforming of Methane: Role of Oleylamine/Oleic Acid Organic Pair , 2015 .
[64] R. J. Kalbasi,et al. Preparation and characterization of Ni/mZSM-5 zeolite with a hierarchical pore structure by using KIT-6 as silica template: an efficient bi-functional catalyst for the reduction of nitro aromatic compounds , 2015 .
[65] S. Zones,et al. Encapsulation of metal clusters within MFI via interzeolite transformations and direct hydrothermal syntheses and catalytic consequences of their confinement. , 2014, Journal of the American Chemical Society.
[66] S. Kawi,et al. Yolk–Satellite–Shell Structured Ni–Yolk@Ni@SiO2 Nanocomposite: Superb Catalyst toward Methane CO2 Reforming Reaction , 2014 .
[67] Kamaraju Seetha Rama Rao,et al. Eco-friendly nitration of benzenes over zeolite-β-SBA-15 composite catalyst , 2014 .
[68] A. Stein,et al. Synthesis of mesoporous ZSM-5 zeolites through desilication and re-assembly processes , 2012 .
[69] D. Verboekend,et al. Design of hierarchical zeolite catalysts by desilication , 2011 .
[70] J. Raoof,et al. A novel sensor for simultaneous determination of dopamine and uric acid using a new MFI-type zeolite prepared by microwave-assisted synthesis , 2011, Monatshefte für Chemie - Chemical Monthly.
[71] S. Abelló,et al. Zeolite Catalysts with Tunable Hierarchy Factor by Pore‐Growth Moderators , 2009 .
[72] M. Illán-Gómez,et al. Ni, Co and bimetallic Ni–Co catalysts for the dry reforming of methane , 2009 .
[73] Yu‐Wen Chen,et al. Temperature-programmed-reduction studies of nickel oxide/alumina catalysts: effects of the preparation method , 1995 .
[74] J. Rostrup-Nielsen. Mechanisms of carbon formation on nickel-containing catalysts , 1977 .