Temperature-dependent hydrogen storage mechanism in palladium nanoparticles decorated on multi-walled carbon nanotubes
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A. Reyhani | S. Z. Mortazavi | H. Noei | W. Caliebe | A. Taherkhani | M. Moradi | A. Tayal
[1] E. Kjeang,et al. The mechanism and sorption kinetic analysis of hydrogen storage at room temperature using acid functionalized carbon nanotubes , 2022, International Journal of Hydrogen Energy.
[2] Yan Sun,et al. Combination of ZIF-67 derived hollow porous Co9S8 nanocages and MWCNTs for electrochemical hydrogen storage applications , 2022, International Journal of Hydrogen Energy.
[3] Xiaosong Zhou,et al. Urchin-like Nb2O5/CNT modified separator for lithium-sulfur batteries , 2022, International Journal of Hydrogen Energy.
[4] S. Rather. Hydrogen uptake of Ti-decorated multiwalled carbon nanotube composites , 2021 .
[5] J. V. van Bokhoven,et al. In situ formation of surface and bulk oxides in small palladium nanoparticles. , 2020, Chemical communications.
[6] A. Lider,et al. An Overview of the Recent Progress in Modifications of Carbon Nanotubes for Hydrogen Adsorption , 2020, Nanomaterials.
[7] S. Mishra,et al. Structure–Activity Relationships of Er3+ and MWCNT-Modified TiO2: Enhancing the Textural and Optoelectronic Properties of TiO2 , 2019 .
[8] R. Ahuja,et al. Li-Functionalized Carbon Nanotubes for Hydrogen Storage: Importance of Size Effects , 2019, ACS Applied Nano Materials.
[9] J. Raskin,et al. Chemically deposited palladium nanoparticles on graphene for hydrogen sensor applications , 2019, Scientific Reports.
[10] A. Kalinko,et al. High-flux XAFS-beamline P64 at PETRA III , 2019 .
[11] W. Liu,et al. Synergistic effect of well-defined dual sites boosting the oxygen reduction reaction , 2018 .
[12] C. Lamberti,et al. Time-resolved operando studies of carbon supported Pd nanoparticles under hydrogenation reactions by X-ray diffraction and absorption. , 2018, Faraday discussions.
[13] Lina Zhang,et al. Size-controllable ultrafine palladium nanoparticles immobilized on calcined chitin microspheres as efficient and recyclable catalysts for hydrogenation. , 2018, Nanoscale.
[14] A. Stierle,et al. Dehydrogenation of Liquid Organic Hydrogen Carriers on Supported Pd Model Catalysts: Carbon Incorporation Under Operation Conditions , 2018, Catalysis Letters.
[15] A. Reyhani,et al. Hybrid laser ablation and chemical reduction to synthesize Ni/Pd nanoparticles decorated multi-wall carbon nanotubes for effective enhancement of hydrogen storage , 2018, International Journal of Hydrogen Energy.
[16] X. Zou,et al. Probing the Evolution of Palladium Species in Pd@MOF Catalysts during the Heck Coupling Reaction: An Operando X-ray Absorption Spectroscopy Study. , 2018, Journal of the American Chemical Society.
[17] A. Reyhani,et al. Hydrogen storage in multi-walled carbon nanotubes decorated with palladium nanoparticles using laser ablation/chemical reduction methods , 2017 .
[18] J. Bokhoven,et al. Core–Shell Structure of Palladium Hydride Nanoparticles Revealed by Combined X-ray Absorption Spectroscopy and X-ray Diffraction , 2017 .
[19] H. G. Shiraz,et al. Palladium nanoparticle and decorated carbon nanotube for electrochemical hydrogen storage , 2017 .
[20] J. Bokhoven,et al. In situ formation of hydrides and carbides in palladium catalyst: When XANES is better than EXAFS and XRD , 2017 .
[21] Junyan Zhu,et al. Selective hydrogenation using palladium bioinorganic catalyst , 2016 .
[22] Harald Giessen,et al. Thermodynamics of the hybrid interaction of hydrogen with palladium nanoparticles. , 2016, Nature materials.
[23] M. Mičušík,et al. Study of polypyrrole aging by XPS, FTIR and conductivity measurements , 2015 .
[24] J. Joshi,et al. Nature of the Pd–CNT interaction in Pd nanoparticles dispersed on multi-walled carbon nanotubes and its implications in hydrogen storage properties , 2015 .
[25] J. Joshi,et al. Comparative evaluation of hydrogen storage behavior of Pd doped carbon nanotubes prepared by wet impregnation and polyol methods , 2015 .
[26] Van Lam Nguyen,et al. N-doped polymer-derived Si(N)OC: The role of the N-containing precursor , 2015 .
[27] G. Henkelman,et al. An experimental and theoretical investigation of the inversion of pd@pt core@shell dendrimer-encapsulated nanoparticles. , 2013, ACS nano.
[28] R. Malekfar,et al. Hydrogen storage property of laser induced Pd-nanoparticle decorated multi-walled carbon nanotubes , 2013 .
[29] Kuen-Song Lin,et al. Structural Characterization of Chromium Atoms in MIL-101 Metal Organic Frameworks Using XANES/EXAFS Spectroscopy , 2012 .
[30] B. Adams,et al. The role of palladium in a hydrogen economy , 2011 .
[31] A. Reyhani,et al. Hydrogen Storage in Decorated Multiwalled Carbon Nanotubes by Ca, Co, Fe, Ni, and Pd Nanoparticles under Ambient Conditions , 2011 .
[32] Fang Niu,et al. Pd nanoparticles in silica hollow spheres with mesoporous walls: a nanoreactor with extremely high activity. , 2010, Chemical communications.
[33] B. Liu,et al. Carbon-supported Pd catalysts: Influences of nanostructure on their catalytic performances for borohydride electrochemical oxidation , 2009 .
[34] A. Reyhani,et al. Enhanced electrochemical hydrogen storage by catalytic Fe-doped multi-walled carbon nanotubes synthesized by thermal chemical vapor deposition , 2009 .
[35] Yi Wang,et al. Electrochemical hydrogen storage properties of ball-milled multi-wall carbon nanotubes , 2009 .
[36] Zhaotie Liu,et al. Selective hydrogenation of cinnamaldehyde over Pt-supported multi-walled carbon nanotubes: Insights into the tube-size effects , 2008 .
[37] John Parthenios,et al. Chemical oxidation of multiwalled carbon nanotubes , 2008 .
[38] C. Hsieh,et al. Fabrication and electrochemical activity of Ni-attached carbon nanotube electrodes for hydrogen storage in alkali electrolyte , 2007 .
[39] Hongjun Gao,et al. The influence of single-walled carbon nanotube structure on the electromagnetic interference shielding efficiency of its epoxy composites , 2007 .
[40] Ana M. Benito,et al. Hydrogen capacity of palladium-loaded carbon materials. , 2006, The journal of physical chemistry. B.
[41] M Newville,et al. ATHENA, ARTEMIS, HEPHAESTUS: data analysis for X-ray absorption spectroscopy using IFEFFIT. , 2005, Journal of synchrotron radiation.
[42] S. Ciraci,et al. Adsorption and dissociation of hydrogen molecules on bare and functionalized carbon nanotubes , 2005, cond-mat/0504696.
[43] E. Yoo,et al. Atomic Hydrogen Storage in Carbon Nanotubes Promoted by Metal Catalysts , 2004 .
[44] Martin Winter,et al. XPS studies of graphite electrode materials for lithium ion batteries , 2000 .
[45] Y. Iwasawa,et al. Pd L3-Edge XANES Spectra of Supported Pd Particles Induced by the Adsorption and the Absorption of Hydrogen , 1999 .
[46] A. Rinzler,et al. Electronic structure of atomically resolved carbon nanotubes , 1998, Nature.
[47] L. Hultman,et al. X-ray photoelectron spectroscopy: Towards reliable binding energy referencing , 2020, Progress in Materials Science.
[48] C. Lamberti,et al. Hydride phase formation in carbon supported palladium hydride nanoparticles by in situ EXAFS and XRD , 2016 .
[49] Kuen-Song Lin,et al. Characterization and hydrogen storage of surface-modified multiwalled carbon nanotubes for fuel cell application , 2012 .
[50] A. Reyhani,et al. H2 adsorption mechanism in Mg modified multi-walled carbon nanotubes for hydrogen storage , 2012 .