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Selective Zero-Gap CO2 Reduction in Acid
DOI:10.1021/acsenergylett.4c01410.png)
摘要
En 中文
The electrochemical CO2 reduction reaction (CO2RR) is a promising method of converting CO2 into valuable chemicals and fuels, thereby contributing to carbon neutrality. This study explores the CO2RR under acidic conditions using a zero-gap electrolyzer, which minimizes ohmic losses by optimizing the electrode proximity. We assessed the performance of the CO2RR using a Ni single-atom catalyst, a porous diaphragm, and various ion-exchange membranes. Our findings show that the porous diaphragm enhances the CO Faraday efficiency (FE) and prevents salt formation, which are crucial for maintaining high selectivity and system durability. Comparative analyses demonstrate that, while traditional ion-exchange membranes can be faced with considerable salt buildup and/or reduced CO FE, the implementation of a zero-gap electrolyzer with a porous diaphragm offers a robust solution, enabling higher efficiency and stability, even at increased current densities. These developments can help optimize CO2 electrolyzer technologies and enhance their operational and economic viability.
Keyword:
CARBON-DIOXIDE
ELECTROLYSIS
MECHANISMS
SEPARATOR
PRODUCTS
CATALYST
SYSTEMS
PEM
期刊
IF:
18.2
论文数:
5.2K
被引数:
6.6W
机构
暂无机构信息
引用论文
Tailoring acidic microenvironments for carbon-efficient CO2 electrolysis over a Ni-N-C catalyst in a membrane electrode assembly electrolyzer在膜电极组件电解槽中通过ni-n-c催化剂定制酸性微环境以实现碳高效的CO2电解
Synthetic multiscale design of nanostructured Ni single atom catalyst for superior CO2 electroreduction用于CO2电还原的纳米结构Ni单原子催化剂的合成多尺度设计
Zero-Gap Electrochemical CO2 Reduction Cells: Challenges and Operational Strateges for Prevention of Salt Precipitation零间隙电化学CO2还原电池: 预防盐沉淀的挑战和操作策略
ACS ENERGY LETTERS
IF18.2
High carbonate ion conductance of a robust PiperION membrane allows industrial current density and conversion in a zero-gap carbon dioxide electrolyzer cell坚固的PiperION膜的高碳酸根离子电导允许在零间隙二氧化碳电解槽中实现工业电流密度和转化
CO2 Electrolysis to CO and O2 at High Selectivity, Stability and Efficiency Using Sustainion Membranes使用Sustainion膜以高选择性,稳定性和效率将CO2电解为CO和O2
Dynamic distributed energy resource allocation for load-side emergency reserve provision面向负荷侧应急备用的动态分布式能源资源分配
Close to 90% Single-Pass Conversion Efficiency for CO2 Electroreduction in an Acid- Fed Membrane Electrode Assembly在酸进料膜电极组件中,CO2电还原的单程转换效率接近90%
ACS ENERGY LETTERS
IF18.2

