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反应性碳捕获实现了使用液体原料的CO电解。

Reactive Carbon Capture Enables CO Electrolysis with Liquid Feedstocks.

作者信息

Pimlott Douglas J D, Kim Yongwook, Berlinguette Curtis P

机构信息

Department of Chemistry, The University of British Columbia, 2036 Main Mall, Vancouver, British Columbia V6T 1Z1, Canada.

Department of Chemical and Biological Engineering, The University of British Columbia, 2360 East Mall, Vancouver, British Columbia V6T 1Z3, Canada.

出版信息

Acc Chem Res. 2024 Apr 2;57(7):1007-1018. doi: 10.1021/acs.accounts.3c00571. Epub 2024 Mar 25.

Abstract

ConspectusThe electrochemical reduction of carbon dioxide (CO2RR) is a promising strategy for mitigating global CO emissions while simultaneously yielding valuable chemicals and fuels, such as CO, HCOO, and CH. This approach becomes especially appealing when integrated with surplus renewable electricity, as the ensuing production of fuels could facilitate the closure of the carbon cycle. Despite these advantages, the realization of industrial-scale electrolyzers fed with CO will be challenged by the substantial energy inputs required to isolate, pressurize, and purify CO prior to electrolysis.To address these challenges, we devised an electrolyzer capable of directly converting reactive carbon solutions (e.g., a bicarbonate-rich eluent that exits a carbon capture unit) into higher value products. This "reactive carbon electrolyzer" operates by reacting (bi)carbonate with acid generated within the electrolyzer to produce CO , thereby facilitating CO2RR at the cathode. This approach eliminates the need for expensive CO recovery and compression steps, as the electrolyzer can then then coupled directly to the CO capture unit.This Account outlines our endeavors in developing this type of electrolyzer, focusing on the design and implementation of materials for electrocatalytic (bi)carbonate conversion. We highlight the necessity for a permeable cathode that allows the efficient transport of (bi)carbonate ions while maintaining a sufficiently high catalytic surface area. We address the importance of the supporting electrolyte, detailing how (bi)carbonate concentration, counter cations, and ionic impurities impact selectivity for products formed in the electrolyzer. We also catalog state-of-the-art performance metrics for reactive carbon electrolyzers (i.e., Faradaic efficiency, full cell voltage, CO utilization efficiency) and outline strategies to bridge the gap between these values and those required for commercial operation Collectively, these findings contribute to the ongoing efforts to realize industrial-scale electrochemical reactors for CO conversion, bringing us closer to a sustainable and closed-loop carbon cycle.

摘要

概述

二氧化碳的电化学还原(CO2RR)是一种很有前景的策略,可用于减少全球碳排放,同时生产有价值的化学品和燃料,如CO、HCOO和CH。当与过剩的可再生电力相结合时,这种方法尤其具有吸引力,因为随后产生的燃料有助于实现碳循环的闭合。尽管有这些优点,但要实现以CO为原料的工业规模电解槽仍面临挑战,即在电解之前需要大量能量来分离、加压和纯化CO。

为应对这些挑战,我们设计了一种能够直接将活性碳溶液(例如,从碳捕获单元流出的富含碳酸氢盐的洗脱液)转化为高价值产品的电解槽。这种“活性碳电解槽”通过使(碳酸氢)盐与电解槽内产生的酸反应生成CO,从而在阴极促进CO2RR。这种方法无需昂贵的CO回收和压缩步骤,因为电解槽可以直接与碳捕获单元相连。

本综述概述了我们在开发此类电解槽方面所做的努力,重点是用于电催化(碳酸氢)盐转化的材料的设计和实施。我们强调了具有渗透性的阴极的必要性,它能使(碳酸氢)盐离子有效传输,同时保持足够高的催化表面积。我们阐述了支持电解质的重要性,详细说明了(碳酸氢)盐浓度、抗衡阳离子和离子杂质如何影响电解槽中形成的产物的选择性。我们还列举了活性碳电解槽的最新性能指标(即法拉第效率、全电池电压、CO利用效率),并概述了缩小这些值与商业运行所需值之间差距的策略。总的来说,这些发现有助于为实现用于CO转化的工业规模电化学反应器而持续做出的努力,使我们更接近可持续的闭环碳循环。

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