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Updated: Jan 14, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Reimagining acidic CO2 electroreduction via anion-mediated proton transfer
Xinyu Wang1, Zhitan Wu1,2,3, Zhiguo Li1,4
1Nanoyang Group, Tianjin Key Laboratory of Advanced Carbon and Electrochemical Energy Storage, School of Chemical Engineering and Technology, and Collaborative Innovation Center of Chemical Science and Engineering (Tianjin), Tianjin University, Tianjin 300072, China.
This study introduces anion engineering to improve acidic CO2 electroreduction (CO2RR) by manipulating proton transfer, overcoming salt precipitation issues common with high cation concentrations. This approach enhances CO2RR selectivity while suppressing the competing hydrogen evolution reaction (HER).
Area of Science:
- Electrochemistry
- Materials Science
- Chemical Engineering
Background:
- Acidic CO2 electroreduction (CO2RR) is a promising carbon-negative technology for chemical synthesis.
- The competing hydrogen evolution reaction (HER) and salt precipitation from high cation concentrations hinder CO2RR efficiency and durability.
- Current strategies rely on high cation concentrations (e.g., K+) to suppress HER, leading to operational challenges.
Purpose of the Study:
- To develop an anion engineering strategy for acidic CO2RR that avoids high cation concentrations and salt precipitation.
- To elucidate the role of anion hydrolysis in proton transfer dynamics and its impact on CO2RR and HER selectivity.
- To establish a new paradigm for electrolyte design in acidic CO2RR systems.
Main Methods:
- Utilized mass spectrometry, spectroscopic techniques, and theoretical calculations to investigate proton transfer mechanisms.
- Employed anion engineering by varying anion hydrolysis tendency in acidic electrolytes.
- Tested non-hydrolyzable chloride anions (Cl-) in low cation concentration (0.2 M K+) acidic conditions (pH 1).
Main Results:
- Hydrolyzable anions were found to promote HER by facilitating proton transfer through protonated species and strengthened hydrogen-bond networks.
- Achieved highly selective CO2RR with 87.3% Faradaic efficiency under strong acidic conditions (pH 1) using non-hydrolyzable Cl- at low K+ concentration.
- Demonstrated that anion hydrolysis tendency is a critical factor influencing electrocatalytic performance in acidic CO2RR.
Conclusions:
- Anion engineering offers a novel approach to optimize acidic CO2RR, shifting focus from cation concentration to anion properties.
- This strategy effectively suppresses HER and prevents salt precipitation, enhancing electrolyzer durability and CO2RR selectivity.
- The findings establish anion hydrolysis tendency as a key descriptor for designing advanced electrolytes for efficient CO2 electroreduction.
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