Hierarchical Structure Carbon-Coated CoNi Nanocatalysts Derived from Flower-Like Bimetal MOFs: Enhancing the Hydrogen Storage Performance of MgH2 under Mild Conditions
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[1] Zhaoqi Zhang,et al. Al and Zr Addition to Improve the Hydrogen Storage Kinetics of Mg-Based Nanocomposites: Synergistic Effects of Multiphase Nanocatalysts , 2023, SSRN Electronic Journal.
[2] H. Pan,et al. Remarkable low-temperature hydrogen cycling kinetics of Mg enabled by VH nanoparticles , 2022, Journal of Materials Science & Technology.
[3] H. Pan,et al. Ultrafast hydrogenation of magnesium enabled by tetragonal ZrO2 hierarchical nanoparticles , 2022, Materials Today Nano.
[4] Wenzheng Zhou,et al. Roles of in situ-formed NbN and Nb2O5 from N-doped Nb2C MXene in regulating the re/hydrogenation and cycling performance of magnesium hydride , 2021, Chemical Engineering Journal.
[5] Hao Xu,et al. Nanoconfined and in Situ Catalyzed MgH2 Self-Assembled on 3D Ti3C2 MXene Folded Nanosheets with Enhanced Hydrogen Sorption Performances. , 2021, ACS nano.
[6] Xu Zhang,et al. Trimesic acid-Ni based metal organic framework derivative as an effective destabilizer to improve hydrogen storage properties of MgH2 , 2021, International Journal of Hydrogen Energy.
[7] Yang-huan Zhang,et al. Dual-tuning of de/hydrogenation kinetic properties of Mg-based hydrogen storage alloy by building a Ni-/Co-multi-platform collaborative system , 2021, International Journal of Hydrogen Energy.
[8] Yijin Liu,et al. Hydrogen storage properties of Mg–Nb@C nanocomposite: Effects of Nb nanocatalyst and carbon nanoconfinement , 2021 .
[9] Kefeng Wang,et al. Graphene-induced growth of N-doped niobium pentaoxide nanorods with high catalytic activity for hydrogen storage in MgH2 , 2021 .
[10] Shumin Han,et al. Fabrication of Multiple-Phase Magnesium-Based Hydrides with Enhanced Hydrogen Storage Properties by Activating NiS@C and Mg Powder , 2021 .
[11] J. Zou,et al. Enhancing hydrogen storage properties of MgH2 through addition of Ni/CoMoO4 nanorods , 2020, Materials Today Energy.
[12] Qilong Ren,et al. CoNi Alloy Nanoparticles Embedded in Metal-Organic Framework-Derived Carbon for the Highly Efficient Separation of Xenon and Krypton via a Charge-Transfer Effect. , 2020, Angewandte Chemie.
[13] Ke Wang,et al. Highly active multivalent multielement catalysts derived from hierarchical porous TiNb2O7 nanospheres for the reversible hydrogen storage of MgH2 , 2020, Nano Research.
[14] Yang-huan Zhang,et al. Catalytic effect of in situ formed Mg2Ni and REH (RE: Ce and Y) on thermodynamics and kinetics of Mg-RE-Ni hydrogen storage alloy , 2020 .
[15] Xuezhang Xiao,et al. Superior de/hydrogenation performances of MgH2 catalyzed by 3D flower-like TiO2@C nanostructures , 2020, Journal of Energy Chemistry.
[16] Gang Huang,et al. Synergy between metallic components of MoNi alloy for catalyzing highly efficient hydrogen storage of MgH2 , 2020, Nano Research.
[17] Tong Liu,et al. TiCX-decorated Mg nanoparticles confined in carbon shell: Preparation and catalytic mechanism for hydrogen storage , 2020 .
[18] Yaxin Feng,et al. Catalytic Effects of Decorating AlV3 Nanocatalyst on Hydrogen Storage Performance of Mg@Mg17Al12 Nanocomposite: Experimental and Theoretical Study , 2020 .
[19] Y. Liu,et al. Empowering hydrogen storage performance of MgH2 by nanoengineering and nanocatalysis , 2020 .
[20] Min Zhu,et al. Closing the loop for hydrogen storage: Facile regeneration of NaBH4 from its hydrolytic product. , 2020, Angewandte Chemie.
[21] Yun Song,et al. Activity-Tuning of Supported Co–Ni Nanocatalysts via Composition and Morphology for Hydrogen Storage in MgH2 , 2020, Frontiers in Chemistry.
[22] Xin Zhang,et al. Highly Ordered Hierarchically Macroporous MIL-125 with High Specific Surface Area for Photocatalytic CO2 Fixation , 2020 .
[23] Zhaokui Wang,et al. MOF confined in macroporous-mesoporous-TiO2 for light-boosting electrocatalytical oxygen production , 2019, Materials Today Energy.
[24] Yang Yang,et al. Hierarchical Structure with Highly Ordered Macroporous-Mesoporous Metal-Organic Frameworks as Dual Function for CO2 Fixation , 2019, iScience.
[25] I. Bürger,et al. Adiabatic magnesium hydride system for hydrogen storage based on thermochemical heat storage: Numerical analysis of the dehydrogenation , 2019, Applied Energy.
[26] Xiulin Fan,et al. Synergistic Catalytic Activity of Porous Rod-like TMTiO3 (TM = Ni and Co) for Reversible Hydrogen Storage of Magnesium Hydride , 2018, The Journal of Physical Chemistry C.
[27] Tong Liu,et al. Recoverable Ni2Al3 nanoparticles and their catalytic effects on Mg-based nanocomposite during hydrogen absorption and desorption cycling , 2018, International Journal of Hydrogen Energy.
[28] P. Liu,et al. Synergistic catalytic effects of the Ni and V nanoparticles on the hydrogen storage properties of Mg-Ni-V nanocomposite , 2018, Chemical Engineering Journal.
[29] Kui Shen,et al. Nanoreactor of MOF-Derived Yolk–Shell Co@C–N: Precisely Controllable Structure and Enhanced Catalytic Activity , 2018 .
[30] Kondo‐François Aguey‐Zinsou,et al. Tailoring magnesium based materials for hydrogen storage through synthesis: Current state of the art , 2018 .
[31] Wang Hongyu,et al. Metal-organic framework one-dimensional fibers as efficient catalysts for activating peroxymonosulfate , 2017 .
[32] Yijing Wang,et al. Effect of the hierarchical Co@C nanoflowers on the hydrogen storage properties of MgH2 , 2017 .
[33] M. El-Eskandarany,et al. Synthetic nanocomposite MgH2/5 wt. % TiMn2 powders for solid-hydrogen storage tank integrated with PEM fuel cell , 2017, Scientific Reports.
[34] Lifang Jiao,et al. Improved hydrogen storage properties of MgH2 with Ni-based compounds , 2017 .
[35] Hongtao Yu,et al. Cobalt Nanoparticles Encapsulated in Porous Carbons Derived from Core-Shell ZIF67@ZIF8 as Efficient Electrocatalysts for Oxygen Evolution Reaction. , 2017, ACS applied materials & interfaces.
[36] Min Zhu,et al. Enhancing the Regeneration Process of Consumed NaBH4 for Hydrogen Storage , 2017 .
[37] Xingguo Li,et al. Formation of Multiple-Phase Catalysts for the Hydrogen Storage of Mg Nanoparticles by Adding Flowerlike NiS. , 2017, ACS applied materials & interfaces.
[38] Min Zhu,et al. Application of dielectric barrier discharge plasma-assisted milling in energy storage materials – A review , 2017 .
[39] Zhiyong Tang,et al. Ultrathin metal–organic framework nanosheets for electrocatalytic oxygen evolution , 2016, Nature Energy.
[40] Jinghua Guo,et al. Graphene oxide/metal nanocrystal multilaminates as the atomic limit for safe and selective hydrogen storage , 2016, Nature Communications.
[41] Xin Wang,et al. A metal–organic framework-derived bifunctional oxygen electrocatalyst , 2016, Nature Energy.
[42] Zaiping Guo,et al. Monodisperse Magnesium Hydride Nanoparticles Uniformly Self‐Assembled on Graphene , 2015, Advanced materials.
[43] Chunguang Chen,et al. Catalytic Effect of Nb Nanoparticles for Improving the Hydrogen Storage Properties of Mg-Based Nanocomposite , 2015 .
[44] Chunguang Chen,et al. Enhanced hydrogen storage properties of magnesium by the synergic catalytic effect of TiH1.971 and TiH1.5 nanoparticles at room temperature , 2014 .
[45] Jiangwen Liu,et al. Enhanced dehydriding thermodynamics and kinetics in Mg(In)–MgF2 composite directly synthesized by plasma milling , 2014 .
[46] Jiangwen Liu,et al. Dual-tuning effect of In on the thermodynamic and kinetic properties of Mg2Ni dehydrogenation , 2013 .
[47] D. Pukazhselvan,et al. High capacity hydrogen storage: Basic aspects, new developments and milestones , 2012 .
[48] Zaiping Guo,et al. Enhanced hydrogen sorption properties of Ni and Co-catalyzed MgH2 , 2010 .
[49] S. Seal,et al. Nature of the use of adventitious carbon as a binding energy standard , 1995 .