journal article Oct 01, 2023

Metal-support interactions in heterogeneous catalytic hydrogen production of formic acid

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References
252
[1]
Dresselhaus "Alternative energy technologies" Nature (2001) 10.1038/35104599
[2]
Unextractable fossil fuels in a 1.5 °C world

Dan Welsby, James Price, Steve Pye et al.

Nature 2021 10.1038/s41586-021-03821-8
[3]
Teichmann "A future energy supply based on Liquid Organic Hydrogen Carriers (LOHC)" Energ. Environ. Sci. (2011) 10.1039/c1ee01454d
[4]
Bhattarai "Biofuel: an alternative to fossil fuel for alleviating world energy and economic crises, J. Environ. Sci. Health. A. Tox. Hazard. Subst" Environ. Eng. (2011)
[5]
Hydrogen-storage materials for mobile applications

Louis Schlapbach, Andreas Züttel

Nature 2001 10.1038/35104634
[6]
Jacobson "Cleaning the air and improving health with hydrogen fuel-cell vehicles" Science (2005) 10.1126/science.1109157
[7]
Sartbaeva "Hydrogen nexus in a sustainable energy future" Energ. Environ. Sci. (2008) 10.1039/b810104n
[8]
Zhou "Innovative strategies in design of transition metal-based catalysts for large-current-density alkaline water/seawater electrolysis" Mat. Today Phys (2022)
[9]
Hydrogen energy, economy and storage: Review and recommendation

J.O. Abe, A.P.I. Popoola, E. Ajenifuja et al.

International Journal of Hydrogen Energy 2019 10.1016/j.ijhydene.2019.04.068
[10]
Jiang "B-doped Pd catalyst: Boosting room-temperature hydrogen production from formic acid–formate solutions" J. Am. Chem. Soc. (2014) 10.1021/ja5008917
[11]
Materials for fuel-cell technologies

Brian C. H. Steele, Angelika Heinzel

Nature 2001 10.1038/35104620
[12]
Hydrogen-storage materials for mobile applications

Louis Schlapbach, Andreas Züttel

Nature 2002 10.1038/35104634
[13]
Yang "High capacity hydrogen storage materials: attributes for automotive applications and techniques for materials discovery" Chem. Soc. Rev. (2010) 10.1039/b802882f
[14]
Sustainable Hydrogen Production

John A. Turner

Science 2004 10.1126/science.1103197
[15]
Mellmann "Formic acid as a hydrogen storage material - development of homogeneous catalysts for selective hydrogen release" Chem. Soc. Rev. (2016) 10.1039/c5cs00618j
[16]
Liu "Research progress of homogeneous catalyst for the dehydrogenation of formic acid, Chinese" J. Org. Chem. (2020)
[17]
Fellay "A viable hydrogen-storage system based on selective formic acid decomposition with a ruthenium catalyst" Angew. Chem. Int. Ed. (2008) 10.1002/anie.200800320
[18]
Sordakis "Homogeneous catalysis for sustainable hydrogen storage in formic acid and alcohols" Chem. Rev. (2018) 10.1021/acs.chemrev.7b00182
[19]
Johnson "Hydrogen generation from formic acid and alcohols using homogeneous catalysts" Chem. Soc. Rev. (2010) 10.1039/b904495g
[20]
Navalon "Metal nanoparticles supported on two-dimensional graphenes as heterogeneous catalysts, Coordin" Chem. Rev. (2016)
[21]
Arhancet "Hydroformylation by supported aqueous-phase catalysis: a new class of heterogeneous catalysts" Nature (1989) 10.1038/339454a0
[22]
Grasemann "Formic acid as a hydrogen source – recent developments and future trends" Energ. Environ. Sci. (2012) 10.1039/c2ee21928j
[23]
Zacharska "Support effect for nanosized Au catalysts in hydrogen production from formic acid decomposition" Cat. Sci. Technol. (2016) 10.1039/c6cy00552g
[24]
Li "Metal-nanoparticle-catalyzed hydrogen generation from formic acid" Accounts Chem. Res. (2017) 10.1021/acs.accounts.7b00132
[25]
Metal–support interactions for heterogeneous catalysis: mechanisms, characterization techniques and applications

Jian Chen, Zihan Zhang, Dongyu Hou et al.

Journal of Materials Chemistry A 2023 10.1039/d2ta10036c
[26]
Luo "Strong metal–support interaction in heterogeneous catalysts" Adv. Energy Mater. (2022) 10.1002/aenm.202201395
[27]
Control of metal-support interactions in heterogeneous catalysts to enhance activity and selectivity

Tom W. van Deelen, Carlos Hernández Mejía, Krijn P. de Jong

Nature Catalysis 2019 10.1038/s41929-019-0364-x
[28]
Metal Catalysts for Heterogeneous Catalysis: From Single Atoms to Nanoclusters and Nanoparticles

Lichen Liu, Avelino Corma

Chemical Reviews 2018 10.1021/acs.chemrev.7b00776
[29]
Wang "New routes for the construction of strong metal–support interactions" Sci. China Chem. (2022) 10.1007/s11426-022-1356-3
[31]
Stahl "The Handbook of Homogeneous Hydrogenation" J. Am. Chem. Soc. (2007) 10.1021/ja0769292
[32]
Benziger "Reactions and reaction intermediates on iron surfaces: II. Hydrocarbons and carboxylic acids" J. Catal. (1980) 10.1016/0021-9517(80)90277-8
[33]
Benziger "The decomposition of formic acid on Ni(100)" Surf. Sci. (1979) 10.1016/0039-6028(79)90297-8
[34]
Pinkard "Kinetics of formic acid decomposition in subcritical and supercritical water – a Raman spectroscopic study" Int. J. Hydrogen Energy (2019) 10.1016/j.ijhydene.2019.10.070
[35]
Marbella "NMR techniques for noble metal nanoparticles" Chem. Mater. (2015) 10.1021/cm504809c
[36]
Tedsree "13C NMR guides rational design of nanocatalysts via chemisorption evaluation in liquid phase" Science (2011) 10.1126/science.1202364
[37]
Hydrogen production from formic acid decomposition at room temperature using a Ag–Pd core–shell nanocatalyst

Karaked Tedsree, Tong Li, Simon Jones et al.

Nature Nanotechnology 2011 10.1038/nnano.2011.42
[38]
Navlani-García "Investigation of size sensitivity in the hydrogen production from formic acid over carbon–supported Pd nanoparticles" ChemistrySelect (2016) 10.1002/slct.201600559
[39]
Kim "Structural dependence of the selectivity of formic acid decomposition on faceted titania (001) surfaces" Langmuir (1990) 10.1021/la00099a009
[40]
Hoshi "Structural effects on the oxidation of formic acid on the high index planes of palladium" Electrochem. Commun. (2007) 10.1016/j.elecom.2006.09.023
[41]
Tedsree "Formate as a surface probe for ruthenium nanoparticles in solution 13C NMR spectroscopy" Angew. Chem. Int. Ed. (2009) 10.1002/anie.200805240
[42]
Grabow "Homogeneous catalytic processes monitored by combined in situ ATR-IR, UV–Vis, and Raman spectroscopy" ACS Catal. (2014) 10.1021/cs500363n
[43]
Qin "Mechanistic analysis-guided Pd-based catalysts for efficient hydrogen production from formic acid dehydrogenation" ACS Catal. (2020) 10.1021/acscatal.0c00225
[44]
Song "Strong metal-support interaction of Pd/CeO2 enhances hydrogen production from formic acid decomposition" Colloid. Surface. A (2023) 10.1016/j.colsurfa.2022.130645
[45]
Subramanian "Catalysis with TiO2/gold nanocomposites. effect of metal particle size on the Fermi level equilibration" J. Am. Chem. Soc. (2004) 10.1021/ja0315199
[46]
Zhou "Enhancement of Pt and Pt-alloy fuel cell catalyst activity and durability via nitrogen-modified carbon supports" Energ. Environ. Sci. (2010) 10.1039/c003710a
[47]
Jeon "Hydrogen production from formic acid dehydrogenation over Pd/C catalysts: Effect of metal and support properties on the catalytic performance" Appl. Catal. B: Environ. (2017) 10.1016/j.apcatb.2017.03.070
[48]
Size-dependent catalytic activity over carbon-supported palladium nanoparticles in dehydrogenation of formic acid

Junjie Li, Wei Chen, Han Zhao et al.

Journal of Catalysis 2017 10.1016/j.jcat.2017.06.007
[49]
Kim "Understanding the effect of Pd size on formic acid dehydrogenation via size-controlled Pd/C catalysts prepared by NaBH4 treatment" Appl. Catal. B: Environ. (2019) 10.1016/j.apcatb.2018.12.008
[50]
Akbayrak "Nanoceria supported palladium(0) nanoparticles: Superb catalyst in dehydrogenation of formic acid at room temperature" Appl. Catal. B: Environ. (2017) 10.1016/j.apcatb.2017.01.063

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Published
Oct 01, 2023
Vol/Issue
474
Pages
145612
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Funding
National Natural Science Foundation of China
Shandong Province Natural Science Foundation
Hunan Provincial Natural Science Foundation
Breeding Plan of Shandong Provincial Qingchuang Research Team
Cite This Article
Shuxing Bai, Ankang Jia, Jialu Song, et al. (2023). Metal-support interactions in heterogeneous catalytic hydrogen production of formic acid. Chemical Engineering Journal, 474, 145612. https://doi.org/10.1016/j.cej.2023.145612