Producing ultrastable Ni-ZrO2 nanoshell catalysts for dry reforming of methane by flame synthesis and Ni exsolution
暂无分享,去创建一个
M. Swihart | J. Urban | Shuo Liu | Eleni A. Kyriakidou | Chaochao Dun | Jilun Wei | Junjie Chen | M. Shah | Satyarit Rao
[1] Yanglong Guo,et al. Spherical Ni Nanoparticles Supported by Nanosheet-Assembled Al2O3 for Dry Reforming of CH4: Elucidating the Induction Period and Its Excellent Resistance to Coking. , 2021, ACS applied materials & interfaces.
[2] Dengsong Zhang,et al. Cooperatively enhanced coking resistance via boron nitride coating over Ni-based catalysts for dry reforming of methane , 2021, Applied Catalysis B: Environmental.
[3] Lirong Zheng,et al. High-Performance Binary Mo–Ni Catalysts for Efficient Carbon Removal during Carbon Dioxide Reforming of Methane , 2021, ACS Catalysis.
[4] M. Swihart,et al. Vapor-phase production of nanomaterials. , 2021, Chemical Society reviews.
[5] 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.
[6] S. Dai,et al. High-entropy materials for catalysis: A new frontier , 2021, Science Advances.
[7] D. V. van Vuuren,et al. Net-zero emission targets for major emitting countries consistent with the Paris Agreement , 2021, Nature Communications.
[8] C. Lund,et al. Single-Step Flame Aerosol Synthesis of Active and Stable Nanocatalysts for the Dry Reforming of Methane. , 2021, ACS applied materials & interfaces.
[9] A. Baiker,et al. Engineering the Distinct Structure Interface of Subnano-alumina Domains on Silica for Acidic Amorphous Silica–Alumina toward Biorefining , 2021, JACS Au.
[10] M. Mohammadi,et al. Fundamentals and recent applications of catalyst synthesis using flame aerosol technology , 2021, Chemical Engineering Journal.
[11] Yong Wang,et al. Direct conversion of methane to formaldehyde and CO on B2O3 catalysts , 2020, Nature Communications.
[12] G. Somorjai,et al. Enhanced and stabilized hydrogen production from methanol by ultrasmall Ni nanoclusters immobilized on defect-rich h-BN nanosheets , 2020, Proceedings of the National Academy of Sciences.
[13] Carsten Sievers,et al. Nickel Speciation and Methane Dry Reforming Performance of Ni/CexZr1–xO2 Prepared by Different Synthesis Methods , 2020 .
[14] 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.
[15] M. Zubair,et al. Uncovering Atomic‐Scale Stability and Reactivity in Engineered Zinc Oxide Electrocatalysts for Controllable Syngas Production , 2020, Advanced Energy Materials.
[16] Danyan Feng,et al. Holey Lamellar High Entropy Oxide as Ultra-Highly Active Heterogeneous Catalyst for Solvent-free Aerobic Oxidation of Benzyl Alcohol. , 2020, Angewandte Chemie.
[17] N. Tsubaki,et al. Effects of the surface adsorbed oxygen species tuned by rare-earth metal doping on dry reforming of methane over Ni/ZrO2 catalyst , 2020 .
[18] K. Dooley,et al. Enhancing CexZr1–xO2 Activity for Methane Dry Reforming Using Subsurface Ni Dopants , 2020 .
[19] C. Yavuz,et al. Dry reforming of methane by stable Ni–Mo nanocatalysts on single-crystalline MgO , 2020, Science.
[20] I. Metcalfe,et al. Endogenous Nanoparticles Strain Perovskite Host Lattice Providing Oxygen Capacity and Driving Oxygen Exchange and CH4 Conversion to Syngas. , 2019, Angewandte Chemie.
[21] C. Stafford,et al. A general approach to multicomponent metal-decorated crumpled reduced graphene oxide nanocomposites using a flame-based process. , 2019, Nanoscale.
[22] Christina Hood,et al. Double counting and the Paris Agreement rulebook , 2019, Science.
[23] K. Wilson,et al. Atomically dispersed nickel as coke-resistant active sites for methane dry reforming , 2019, Nature Communications.
[24] M. Mohammadi,et al. Flame-synthesized nickel-silver nanoparticle inks provide high conductivity without sintering , 2019, Chemical Engineering Journal.
[25] R. Amal,et al. Modulating Activity through Defect Engineering of Tin Oxides for Electrochemical CO2 Reduction , 2019, Advanced science.
[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] Jun Kyu Kim,et al. Growth Kinetics of Individual Co Particles Ex-solved on SrTi0.75Co0.25O3-δ Polycrystalline Perovskite Thin Films. , 2019, Journal of the American Chemical Society.
[28] H. M. Jang,et al. Lattice strain-enhanced exsolution of nanoparticles in thin films , 2019, Nature Communications.
[29] Zuotai Zhang,et al. Calcium-looping reforming of methane realizes in situ CO2 utilization with improved energy efficiency , 2019, Science Advances.
[30] Jun Kyu Kim,et al. In situ synthesis of supported metal nanocatalysts through heterogeneous doping , 2018, Nature Communications.
[31] D. Debecker,et al. Aerosol processing: a wind of innovation in the field of advanced heterogeneous catalysts. , 2018, Chemical Society reviews.
[32] Steven D. Lacey,et al. Carbothermal shock synthesis of high-entropy-alloy nanoparticles , 2018, Science.
[33] Joseph Zeaiter,et al. Catalyst design for dry reforming of methane: Analysis review , 2018 .
[34] H. Jeong,et al. Exsolution trends and co-segregation aspects of self-grown catalyst nanoparticles in perovskites , 2017, Nature Communications.
[35] 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.
[36] Xinhe Bao,et al. Direct Conversion of Methane to Value-Added Chemicals over Heterogeneous Catalysts: Challenges and Prospects. , 2017, Chemical reviews.
[37] Liang Zeng,et al. Dry reforming of methane over Ni/La2O3 nanorod catalysts with stabilized Ni nanoparticles , 2017 .
[38] R. Luque,et al. Ni-based bimetallic heterogeneous catalysts for energy and environmental applications , 2016 .
[39] C. Detavernier,et al. Super-dry reforming of methane intensifies CO2 utilization via Le Chatelier’s principle , 2016, Science.
[40] M. Willinger,et al. High-Temperature Stable Ni Nanoparticles for the Dry Reforming of Methane , 2016 .
[41] M. V. Ganduglia-Pirovano,et al. Dry Reforming of Methane on a Highly-Active Ni-CeO2 Catalyst: Effects of Metal-Support Interactions on C-H Bond Breaking. , 2016, Angewandte Chemie.
[42] B. A. Rosen,et al. Influence of LaNiO3 Shape on Its Solid-Phase Crystallization into Coke-Free Reforming Catalysts , 2016 .
[43] S. Pratsinis,et al. Synthesis of catalytic materials in flames: opportunities and challenges. , 2016, Chemical Society reviews.
[44] Dragos Neagu,et al. Nano-socketed nickel particles with enhanced coking resistance grown in situ by redox exsolution , 2015, Nature Communications.
[45] James Spivey,et al. A review of dry (CO2) reforming of methane over noble metal catalysts. , 2014, Chemical Society reviews.
[46] Munish Sharma,et al. Flame-driven aerosol synthesis of copper-nickel nanopowders and conductive nanoparticle films. , 2014, ACS applied materials & interfaces.
[47] Chongqi Chen,et al. Highly efficient Au/ZrO2 catalysts for low-temperature water–gas shift reaction: Effect of pre-calcination temperature of ZrO2 , 2012 .
[48] L. Mädler,et al. Flame spray pyrolysis: An enabling technology for nanoparticles design and fabrication. , 2010, Nanoscale.
[49] T. Okamoto,et al. Self-regeneration of a Pd-perovskite catalyst for automotive emissions control , 2002, Nature.
[50] M. Mohammadi,et al. Flame aerosol synthesis of hollow alumina nanoshells for application in thermal insulation , 2022 .