Research graph
References from From single Ni atom to tetranuclear Ni clusters on graphdiyne: Unraveling size-dependent catalysis toward formic acid dehydrogenation. Local targets link to admitted publications; unresolved targets remain external evidence.
Unresolved reference
2018 · External reference
Sustainable hydrogen production
10.1126/science.1103197 · 2004 · External reference
Hydrogen's role in an uncertain energy future
10.1016/j.ijhydene.2008.10.060 · 2009 · External reference
Current research trends and perspectives on materials-based hydrogen storage solutions: a critical review
10.1016/j.ijhydene.2016.11.195 · 2017 · External reference
Hydrogen production from renewable and sustainable energy resources: promising green energy carrier for clean development
10.1016/j.rser.2015.12.112 · 2016 · External reference
Recent strategies targeting efficient hydrogen production from chemical hydrogen storage materials over carbon-supported catalysts
10.1038/s41427-018-0025-6 · 2018 · External reference
Formic acid as a hydrogen source – recent developments and future trends
10.1039/c2ee21928j · 2012 · External reference
Formic acid as a hydrogen storage material – development of homogeneous catalysts for selective hydrogen release
10.1039/c5cs00618j · 2016 · External reference
Homogeneous catalysis for sustainable hydrogen storage in formic acid and alcohols
10.1021/acs.chemrev.7b00182 · 2018 · External reference
Thermocatalytic formic acid dehydrogenation: recent advances and emerging trends
10.1039/d1ta05910f · 2021 · External reference
Utilization of renewable energy to produce electrical energy(Hydrogen energy)
10.1016/j.proeng.2011.11.2115 · 2011 · External reference
Recent development of polymer electrolyte membranes for fuel cells
10.1021/cr200035s · 2012 · External reference
Single-atom catalysis of CO oxidation using Pt1/FeOx
10.1038/nchem.1095 · 2011 · External reference
Single atom excels as the smallest functional material
10.1002/adfm.201600240 · 2016 · External reference
The power of single‐atom catalysis
10.1002/cctc.201500363 · 2015 · External reference
Effect of N-doping and carbon nanostructures on NiCu particles for hydrogen production from formic acid
10.1016/j.apcatb.2021.120604 · 2021 · External reference
Ni-N4 sites in a single-atom Ni catalyst on N-doped carbon for hydrogen production from formic acid
10.1016/j.jcat.2021.08.044 · 2021 · External reference
Highly dispersed Ni on nitrogen-doped carbon for stable and selective hydrogen generation from gaseous formic acid
10.3390/nano13030545 · 2023 · External reference
Effects of the carbon support doping with nitrogen for the hydrogen production from formic acid over Ni catalysts
10.3390/en12214111 · 2019 · External reference
In-situ anchored catalysts for efficient gas-phase formic acid dehydrogenation: enhanced activity via metal-support interactions between Ni3P and g-C3N4
2026 · External reference
Atomic-level tailoring of single-atom tungsten catalysts for optimized electrochemical nitrate-to-ammonia conversion
10.1016/j.jcis.2024.07.134 · 2024 · External reference
Regulating the coordination environment of single atom catalysts anchored on C3N monolayer for Li-S battery by first-principles calculations
10.1016/j.jcis.2023.12.108 · 2024 · External reference
C3N monolayer decorated with single-atom Y for outstanding and reversible hydrogen storage: a DFT study
10.1016/j.ijhydene.2024.01.137 · 2024 · External reference
The single metal atom (Ni, Pd, Pt) anchored on defective hexagonal boron nitride for oxidative desulfurization
10.1039/d3cp04963a · 2024 · External reference
Entrapping metal atom on hexagonal boron nitride monolayer for high performance single-atom-catalyst: role of vacancy defects and metal support
10.1016/j.apsusc.2022.156061 · 2023 · External reference
Single-atom catalysts supported on a hybrid structure of boron nitride/graphene for efficient nitrogen fixation via synergistic interfacial interactions
10.1039/d3nr05295h · 2024 · External reference
A layered g-C3N4 support Single-Atom Fe-N4 catalyst derived from hemin to activate PMS for selective degradation of electron-rich compounds via singlet oxygen species
10.1016/j.cej.2023.145571 · 2023 · External reference
C3N-supported ⅢA group metal single-atom catalysts with different coordination microenvironments: Electrocataletic NO reduction to ammonia
10.1016/j.apsusc.2023.159130 · 2024 · External reference
A universal descriptor for two-dimensional carbon nitride-based single-atom electrocatalysts towards the nitrogen reduction reaction
10.1039/d4ta05067c · 2024 · External reference
Electron transfer induced by the change of spin states as a catalytic descriptor on C 2 N–TM single-atom catalysts
10.1021/acs.jpclett.4c02138 · 2024 · External reference
Electron transfer induced by the change of spin states as a catalytic descriptor on C2N–TM single-atom catalysts
2024 · External reference
A highly conjugated Nickel(II)‐Acetylide framework for efficient photocatalytic carbon dioxide reduction
10.1002/anie.202418269 · 2025 · External reference
Graphdiyne/metal oxide hybrid materials for efficient energy and environmental catalysis
10.1039/d4sc00036f · 2024 · External reference
Controlled synthesis of graphdiyne-based multiscale catalysts for energy conversion
10.1021/prechem.3c00125 · 2024 · External reference
Recent advances in graphdiyne for photocatalytic hydrogen evolution
10.1039/d4cp03348e · 2024 · External reference
Multidimensional graphdiyne structures and beyond for energy conversion and storage
10.1002/adfm.202510586 · 2026 · External reference
Anchoring zero valence single atoms of nickel and iron on graphdiyne for hydrogen evolution
10.1038/s41467-018-03896-4 · 2018 · External reference
Computational study on graphdiyne supported PdxCuy clusters as potential catalysts for formic acid dehydrogenation
10.1016/j.ijhydene.2024.07.028 · 2024 · External reference
Pd single atom supported on N-doped egg tray graphene as formic acid dehydrogenation catalysts
10.1088/2053-1583/acae34 · 2023 · External reference
Aluminum fluoride induced PdAu nanoparticles on layered g-C3N4 nanosheets for efficient dehydrogenation of formic acid at room temperature
10.1016/j.ijhydene.2022.06.293 · 2022 · External reference
Single metal atom catalyst supported on g-C3N4 for formic acid dehydrogenation: a combining density functional theory and machine learning study
10.1021/acs.jpcc.1c05734 · 2021 · External reference
Generalized gradient approximation made simple
10.1103/physrevlett.77.3865 · 1996 · External reference
From molecules to solids with the DMol3 approach
10.1063/1.1316015 · 2000 · External reference
Semiempirical GGA‐type density functional constructed with a long‐range dispersion correction
10.1002/jcc.20495 · 2006 · External reference
C2H2 semi-hydrogenation on the PdxMy cluster/graphdiyne catalysts: effects of cluster composition and size on the activity and selectivity
10.1016/j.gee.2020.10.020 · 2022 · External reference
How to conceptualize catalytic cycles? The energetic span model
10.1021/ar1000956 · 2011 · External reference
Hydrogen from formic acid decomposition over Pd and Au catalysts
10.1016/j.cattod.2010.03.050 · 2010 · External reference
Production of H2-free CO by decomposition of formic acid over ZrO2 catalysts
10.1016/j.apcata.2016.11.032 · 2017 · External reference
Vapour phase formic acid decomposition over PdAu/γ-Al2O3 catalysts: effect of composition of metallic particles
10.1016/j.jcat.2012.12.009 · 2013 · External reference
Transition metal single atom anchored C3N for highly efficient formic acid dehydrogenation: a DFT study
10.1016/j.apsusc.2021.150186 · 2021 · External reference
Study of non-noble-metal-based metal–nitrogen–carbon catalysts for formic acid dehydrogenation
10.1021/acssuschemeng.1c08630 · 2022 · External reference
Modulation of the kinetics of outer-sphere electron transfer at graphene by a metal substrate
10.1039/d2cp03771h · 2022 · External reference
Sabatier principle for rationalizing enzymatic hydrolysis of a synthetic polyester
10.1021/jacsau.2c00204 · 2022 · External reference
Single atom excels as the smallest functional material
10.1002/adfm.201600240 · ExternalCitation · doi-reference
Multidimensional graphdiyne structures and beyond for energy conversion and storage
10.1002/adfm.202510586 · ExternalCitation · doi-reference
A highly conjugated Nickel(II)‐Acetylide framework for efficient photocatalytic carbon dioxide reduction
10.1002/anie.202418269 · ExternalCitation · doi-reference
The power of single‐atom catalysis
10.1002/cctc.201500363 · ExternalCitation · doi-reference
Semiempirical GGA‐type density functional constructed with a long‐range dispersion correction
10.1002/jcc.20495 · ExternalCitation · doi-reference
Production of H2-free CO by decomposition of formic acid over ZrO2 catalysts
10.1016/j.apcata.2016.11.032 · ExternalCitation · doi-reference
Effect of N-doping and carbon nanostructures on NiCu particles for hydrogen production from formic acid
10.1016/j.apcatb.2021.120604 · ExternalCitation · doi-reference
Transition metal single atom anchored C3N for highly efficient formic acid dehydrogenation: a DFT study
10.1016/j.apsusc.2021.150186 · ExternalCitation · doi-reference
Entrapping metal atom on hexagonal boron nitride monolayer for high performance single-atom-catalyst: role of vacancy defects and metal support
10.1016/j.apsusc.2022.156061 · ExternalCitation · doi-reference
C3N-supported ⅢA group metal single-atom catalysts with different coordination microenvironments: Electrocataletic NO reduction to ammonia
10.1016/j.apsusc.2023.159130 · ExternalCitation · doi-reference
Hydrogen from formic acid decomposition over Pd and Au catalysts
10.1016/j.cattod.2010.03.050 · ExternalCitation · doi-reference
A layered g-C3N4 support Single-Atom Fe-N4 catalyst derived from hemin to activate PMS for selective degradation of electron-rich compounds via singlet oxygen species
10.1016/j.cej.2023.145571 · ExternalCitation · doi-reference
C2H2 semi-hydrogenation on the PdxMy cluster/graphdiyne catalysts: effects of cluster composition and size on the activity and selectivity
10.1016/j.gee.2020.10.020 · ExternalCitation · doi-reference
Hydrogen's role in an uncertain energy future
10.1016/j.ijhydene.2008.10.060 · ExternalCitation · doi-reference
Current research trends and perspectives on materials-based hydrogen storage solutions: a critical review
10.1016/j.ijhydene.2016.11.195 · ExternalCitation · doi-reference
Aluminum fluoride induced PdAu nanoparticles on layered g-C3N4 nanosheets for efficient dehydrogenation of formic acid at room temperature
10.1016/j.ijhydene.2022.06.293 · ExternalCitation · doi-reference
C3N monolayer decorated with single-atom Y for outstanding and reversible hydrogen storage: a DFT study
10.1016/j.ijhydene.2024.01.137 · ExternalCitation · doi-reference
Computational study on graphdiyne supported PdxCuy clusters as potential catalysts for formic acid dehydrogenation
10.1016/j.ijhydene.2024.07.028 · ExternalCitation · doi-reference
Vapour phase formic acid decomposition over PdAu/γ-Al2O3 catalysts: effect of composition of metallic particles
10.1016/j.jcat.2012.12.009 · ExternalCitation · doi-reference
Ni-N4 sites in a single-atom Ni catalyst on N-doped carbon for hydrogen production from formic acid
10.1016/j.jcat.2021.08.044 · ExternalCitation · doi-reference
Regulating the coordination environment of single atom catalysts anchored on C3N monolayer for Li-S battery by first-principles calculations
10.1016/j.jcis.2023.12.108 · ExternalCitation · doi-reference
Atomic-level tailoring of single-atom tungsten catalysts for optimized electrochemical nitrate-to-ammonia conversion
10.1016/j.jcis.2024.07.134 · ExternalCitation · doi-reference
Utilization of renewable energy to produce electrical energy(Hydrogen energy)
10.1016/j.proeng.2011.11.2115 · ExternalCitation · doi-reference
Hydrogen production from renewable and sustainable energy resources: promising green energy carrier for clean development
10.1016/j.rser.2015.12.112 · ExternalCitation · doi-reference
Homogeneous catalysis for sustainable hydrogen storage in formic acid and alcohols
10.1021/acs.chemrev.7b00182 · ExternalCitation · doi-reference
Single metal atom catalyst supported on g-C3N4 for formic acid dehydrogenation: a combining density functional theory and machine learning study
10.1021/acs.jpcc.1c05734 · ExternalCitation · doi-reference
Electron transfer induced by the change of spin states as a catalytic descriptor on C 2 N–TM single-atom catalysts
10.1021/acs.jpclett.4c02138 · ExternalCitation · doi-reference
Study of non-noble-metal-based metal–nitrogen–carbon catalysts for formic acid dehydrogenation
10.1021/acssuschemeng.1c08630 · ExternalCitation · doi-reference
How to conceptualize catalytic cycles? The energetic span model
10.1021/ar1000956 · ExternalCitation · doi-reference
Recent development of polymer electrolyte membranes for fuel cells
10.1021/cr200035s · ExternalCitation · doi-reference
Sabatier principle for rationalizing enzymatic hydrolysis of a synthetic polyester
10.1021/jacsau.2c00204 · ExternalCitation · doi-reference
Controlled synthesis of graphdiyne-based multiscale catalysts for energy conversion
10.1021/prechem.3c00125 · ExternalCitation · doi-reference
Single-atom catalysis of CO oxidation using Pt1/FeOx
10.1038/nchem.1095 · ExternalCitation · doi-reference
Recent strategies targeting efficient hydrogen production from chemical hydrogen storage materials over carbon-supported catalysts
10.1038/s41427-018-0025-6 · ExternalCitation · doi-reference
Anchoring zero valence single atoms of nickel and iron on graphdiyne for hydrogen evolution
10.1038/s41467-018-03896-4 · ExternalCitation · doi-reference
Formic acid as a hydrogen source – recent developments and future trends
10.1039/c2ee21928j · ExternalCitation · doi-reference
Formic acid as a hydrogen storage material – development of homogeneous catalysts for selective hydrogen release
10.1039/c5cs00618j · ExternalCitation · doi-reference
Thermocatalytic formic acid dehydrogenation: recent advances and emerging trends
10.1039/d1ta05910f · ExternalCitation · doi-reference
Modulation of the kinetics of outer-sphere electron transfer at graphene by a metal substrate
10.1039/d2cp03771h · ExternalCitation · doi-reference
The single metal atom (Ni, Pd, Pt) anchored on defective hexagonal boron nitride for oxidative desulfurization
10.1039/d3cp04963a · ExternalCitation · doi-reference
Single-atom catalysts supported on a hybrid structure of boron nitride/graphene for efficient nitrogen fixation via synergistic interfacial interactions
10.1039/d3nr05295h · ExternalCitation · doi-reference
Recent advances in graphdiyne for photocatalytic hydrogen evolution
10.1039/d4cp03348e · ExternalCitation · doi-reference
Graphdiyne/metal oxide hybrid materials for efficient energy and environmental catalysis
10.1039/d4sc00036f · ExternalCitation · doi-reference
A universal descriptor for two-dimensional carbon nitride-based single-atom electrocatalysts towards the nitrogen reduction reaction
10.1039/d4ta05067c · ExternalCitation · doi-reference
From molecules to solids with the DMol3 approach
10.1063/1.1316015 · ExternalCitation · doi-reference
Pd single atom supported on N-doped egg tray graphene as formic acid dehydrogenation catalysts
10.1088/2053-1583/acae34 · ExternalCitation · doi-reference
Generalized gradient approximation made simple
10.1103/physrevlett.77.3865 · ExternalCitation · doi-reference
Sustainable hydrogen production
10.1126/science.1103197 · ExternalCitation · doi-reference
Effects of the carbon support doping with nitrogen for the hydrogen production from formic acid over Ni catalysts
10.3390/en12214111 · ExternalCitation · doi-reference
Highly dispersed Ni on nitrogen-doped carbon for stable and selective hydrogen generation from gaseous formic acid
10.3390/nano13030545 · ExternalCitation · doi-reference