熵驱动的二氧化碳捕获:高盐度和疏水性单乙醇胺的作用

IF 6.2 Q2 ENERGY & FUELS
Aleksa Petrović, Rodrigo Lima, Peter Westh, Ji-Woong Lee
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引用次数: 0

摘要

在向碳中和过渡期间解决大气二氧化碳水平问题需要有效的二氧化碳捕获方法。水胺洗涤在大规模烟气捕获中占主导地位,但受到能源密集型再生步骤、吸附剂损失以及随之而来的挥发性胺环境问题的阻碍。本文介绍了疏水的非挥发性烷基化单乙醇胺(MEA)作为盐水中的水稀薄CO2吸附剂。系统地研究了MEA烷基化、盐度和吸收剂聚集对改进CO2捕集过程的影响。CO2的吸收促进了疏水吸收剂的自发自聚集,从而增加了高离子强度溶液中水的熵。这种效应由水溶液的盐度控制,为基准MEA提供了比较重量CO2吸收性能。实验证实,烷基化MEAs在盐水中的疏水性是其易于吸收的原因,也是其再生条件温和的原因。因此,熵驱动的方法最大限度地减少了吸收剂的蒸发、腐蚀和分解,从而为实现节能碳捕获铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Entropy-Driven Carbon Dioxide Capture: The Role of High Salinity and Hydrophobic Monoethanolamine

Entropy-Driven Carbon Dioxide Capture: The Role of High Salinity and Hydrophobic Monoethanolamine

Addressing atmospheric CO2 levels during the transition to carbon neutrality requires efficient CO2 capture methods. Aqueous amine scrubbing dominates large-scale flue gas capture but is hampered by the energy-intensive regeneration step, sorbent loss, and consequent environmental concerns with volatile amines. Herein, hydrophobic non-volatile alkylated monoethanolamine (MEA) is introduced as a water-lean CO2 absorbent in brine. The effects of alkylation of MEA, salinity, and aggregation of absorbents on the improved CO2 capture process are systematically investigated. The CO2 absorption facilitates spontaneous self-aggregation of hydrophobic absorbents, which increases the entropy of water in high-ion strength solutions. This effect is controlled by the salinity of aqueous solutions, affording comparative gravimetric CO2 uptake performance to benchmark MEA. It is experimentally verified that the hydrophobicity of alkylated MEAs in saline water is responsible for facile absorption, and also for mild regeneration conditions. Therefore, the entropy-driven approach minimizes absorbent evaporation, corrosion, and decomposition, thus paving the way to realize energy-efficient carbon capture.

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来源期刊
CiteScore
8.20
自引率
3.40%
发文量
0
期刊介绍: Advanced Energy and Sustainability Research is an open access academic journal that focuses on publishing high-quality peer-reviewed research articles in the areas of energy harvesting, conversion, storage, distribution, applications, ecology, climate change, water and environmental sciences, and related societal impacts. The journal provides readers with free access to influential scientific research that has undergone rigorous peer review, a common feature of all journals in the Advanced series. In addition to original research articles, the journal publishes opinion, editorial and review articles designed to meet the needs of a broad readership interested in energy and sustainability science and related fields. In addition, Advanced Energy and Sustainability Research is indexed in several abstracting and indexing services, including: CAS: Chemical Abstracts Service (ACS) Directory of Open Access Journals (DOAJ) Emerging Sources Citation Index (Clarivate Analytics) INSPEC (IET) Web of Science (Clarivate Analytics).
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