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Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Ultrasmall Nickel Nanoclusters Accelerating Protonation for Efficient CO2 Electroreduction towards CO
Jun Wu1,2, Wuyi Zhang1, Lin Wu1
1School of Metallurgy and Environment, Central South University, Changsha, 410083, China.
Ultrasmall nickel nanoclusters (Ni3─N─C) accelerate electrochemical CO2 reduction by enhancing proton-coupled electron transfer. This catalyst design significantly boosts CO selectivity, offering a promising strategy for efficient carbon dioxide conversion.
Area of Science:
- Electrochemistry
- Materials Science
- Catalysis
Background:
- Proton-coupled electron transfer (PCET) is crucial for electrochemical CO2 reduction (CO2RR).
- The protonation step in PCET is often the kinetic bottleneck, limiting CO2RR efficiency.
- Modulating catalyst microstructures to accelerate protonation is a key strategy to improve CO2 to CO selectivity.
Purpose of the Study:
- To develop ultrasmall Ni nanocluster catalysts (Ni3─N─C) for enhanced CO2RR.
- To investigate the role of unique Ni coordination environments in sub-nanoclusters on catalytic performance.
- To elucidate the mechanism by which Ni3─N─C catalysts improve the rate-limiting protonation step.
Main Methods:
- One-step pyrolysis of Ni-containing precursors under H2 atmosphere to synthesize Ni3─N─C catalysts.
- Electrochemical characterization to evaluate CO2RR performance, including Faradaic efficiency (FECO) and overpotentials.
- Density functional theory (DFT) calculations to understand the reaction mechanism and energy barriers.
- In situ FTIR spectroscopy to confirm intermediate formation and reaction pathways.
Main Results:
- Ni3─N─C catalysts delivered >90% CO Faradaic efficiency across a wide potential range (-0.6 to -1.0 V vs RHE), with a peak of ~95% at -0.8 V.
- DFT calculations revealed that Ni3─N─C lowers the energy barrier for *COOH formation due to altered adsorption configurations.
- In situ FTIR confirmed accelerated *COOH formation on Ni3─N─C surfaces, validating the enhanced protonation step.
Conclusions:
- Ultrasmall Ni sub-nanoclusters (Ni3─N─C) effectively modulate PCET, accelerating the rate-limiting protonation step in CO2RR.
- The distinct local Ni coordination environments in Ni3─N─C are critical for enhancing CO2 to CO selectivity.
- This work establishes a rational design principle for nanocluster-based catalysts for efficient electrochemical CO2 reduction.
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