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Water Splitting
100%
Ultrathin
100%
Hydroxylated
100%
Iridium
100%
Nanosheets
100%
Efficient Electrocatalyst
100%
Carbon Dioxide
20%
Two Dimensional
20%
Electron Transfer
20%
Layer Thickness
20%
Carbon Effect
20%
Atomic Layers
20%
Hydroxylation
20%
Bond Cleavage
20%
Physicochemical Properties
20%
Density Functional Calculations
20%
Initial Activation
20%
Excellent Performance
20%
Wide pH Range
20%
IrO2
20%
Wet Chemical Method
20%
Noble Metals
20%
Efficient Electron Transfer
20%
Promising Applications
20%
Confinement Effect
20%
H2O Splitting
20%
Two Dimensional Materials
20%
Oxygen Evolution Reaction
20%
Hydrogen Evolution Reaction
20%
Reaction Evolution
20%
Overall Water Splitting
20%
Surface Electrons
20%
Efficient Initial
20%
Ultrathin Structure
20%
Hydroxylated Surface
20%
Growth Confinement
20%
Material Science
Nanosheet
100%
Water Splitting
100%
Iridium
100%
Electrocatalysts
100%
Surface (Surface Science)
66%
Electron Transfer
66%
Two-Dimensional Material
33%
Hydrogen Evolution
33%
Oxygen Evolution
33%
Chemical Processing
33%
Density
33%
Carbon Monoxide
33%
Engineering
Nanosheet
100%
Water Splitting
100%
Electrocatalysts
100%
Two Dimensional
33%
Oxygen Evolution Reaction
33%
Hydrogen Evolution Reaction
33%
Critical Role
33%
Breakthrough
33%
Layer Thickness
33%
Hydroxylation
33%
Confinement Effect
33%
Atomic Layer
33%
Hydroxylated Surface
33%
2D Material
33%
Physicochemical Property
33%
Bond Cleavage
33%
Chemistry
Iridium
100%
Electrocatalyst
100%
Nanosheet
100%
Electron Transport
66%
Two-Dimensional Material
33%
Hydrogen
33%
Carbon Monoxide
33%
Chemical Method
33%
formation
33%
hydroxylation
33%
Density Functional Theory
33%
Noble Metal
33%
Chemical Engineering
Nanosheet
100%
Precious Metal
33%