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迈向具有光化学驱动的 CO 释放和溶剂再生功能的高效直接空气捕集

Towards Energy-Efficient Direct Air Capture with Photochemically-Driven CO Release and Solvent Regeneration.

作者信息

Premadasa Uvinduni I, Doughty Benjamin, Custelcean Radu, Ma Ying-Zhong

机构信息

Chemical Sciences Division, Oak Ridge National Laboratory, P.O. Box 2008, 37831, Oak Ridge, TN, USA.

出版信息

Chempluschem. 2024 Oct;89(10):e202300713. doi: 10.1002/cplu.202300713. Epub 2024 Mar 26.

Abstract

The intensive energy demands associated with solvent regeneration and CO release in current direct air capture (DAC) technologies makes their deployment at the massive scales (GtCO/year) required to positively impact the climate economically unfeasible. This challenge underscores the critical need to develop new DAC processes with significantly reduced energy costs. Recently, we developed a new approach to photochemically drive efficient release of CO through an intermolecular proton transfer reaction by exploiting the unique properties of an indazole metastable-state photoacid (mPAH), opening a new avenue towards energy efficient on-demand CO release and solvent regeneration using abundant solar energy instead of heat. In this Concept Article, we will describe the principle of our photochemically-driven CO release approach for solvent-based DAC systems, discuss the essential prerequisites and conditions to realize this cyclable CO release chemistry under ambient conditions. We outline the key findings of our approach, discuss the latest developments from other research laboratories, detail approaches used to monitor DAC systems in situ, and highlight experimental procedures for validating its feasibility. We conclude with a summary and outlook into the immediate challenges that must be addressed in order to fully exploit this novel photochemically-driven approach to DAC solvent regeneration.

摘要

当前直接空气捕获(DAC)技术中与溶剂再生和CO释放相关的高强度能源需求,使得以对气候产生积极影响所需的大规模规模(每年千兆吨CO)进行部署在经济上不可行。这一挑战凸显了开发能源成本大幅降低的新型DAC工艺的迫切需求。最近,我们开发了一种新方法,通过利用吲唑亚稳态光酸(mPAH)的独特性质,通过分子间质子转移反应光化学驱动CO的高效释放,开辟了一条利用丰富太阳能而非热量实现按需高效CO释放和溶剂再生的新途径。在这篇概念文章中,我们将描述用于基于溶剂的DAC系统的光化学驱动CO释放方法的原理,讨论在环境条件下实现这种可循环CO释放化学的基本先决条件和条件。我们概述了该方法的关键发现,讨论了其他研究实验室的最新进展,详细介绍了用于原位监测DAC系统的方法,并强调了验证其可行性的实验程序。我们最后总结并展望了为充分利用这种新型光化学驱动的DAC溶剂再生方法必须应对的紧迫挑战。

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