对可持续二氧化碳转化过程及其实施的现状和未来的看法

Yakubu Adekunle Alli , Onome Ejeromedoghene , Tendai O. Dembaremba , Amer Adawi , Oyekunle Azeez Alimi , Teckla Njei , Abayomi Bamisaye , Alex Kofi , Uche Quincy Anene , Adekola Monsuru Adewale , Zainab Temitope Yaqub , Motunrayo Eniola Oladele , Lateefat Jimoh , Samuel Oluwadadepo Oni , Adeniyi Sunday Ogunlaja , Ben Bin Xu
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引用次数: 0

摘要

大气中二氧化碳(CO 2)浓度的快速上升继续威胁着全球气候的稳定,因此迫切需要可扩展的、经济上可行的和可持续的CO 2减缓战略。在新兴的解决方案中,二氧化碳转化技术提供了一种变革性的途径,使二氧化碳成为可再生的碳原料,用于生产燃料、化学品和材料,从而促进循环碳经济。本文首先探讨了基本的二氧化碳捕获和预处理方法,强调了先进的材料,以及直接将捕获与转化过程结合起来的集成策略,作为改善二氧化碳转化的门户。在CO₂转化技术的最新进展,跨越热化学,电化学,光化学和生物领域,然后涵盖。通过案例研究和商业化努力,探讨了二氧化碳转换系统与可再生能源和工业基础设施的整合,强调了全行业脱碳的机会。此外,还介绍了人工智能(AI)和机器学习(ML)在预测建模、催化剂设计和过程优化方面日益重要的作用,以及为这些技术的实际部署提供框架的技术经济分析。对能源效率、长期稳定性、产品选择性和监管约束等持续存在的挑战进行了批判性分析,并提出了新兴的解决方案。报告最后概述了未来的研究方向,包括下一代技术的发展以及促进跨学科合作和公私伙伴关系的战略。通过综合最新进展,确定关键障碍和机会,这项工作为加速全球部署二氧化碳转换技术,走向可持续和脱碳的未来提供了路线图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Perspectives on the status and future of sustainable CO2 conversion processes and their implementation

Perspectives on the status and future of sustainable CO2 conversion processes and their implementation
The rapid rise in atmospheric carbon dioxide (CO₂) concentrations continues to threaten global climate stability, underscoring the urgent need for scalable, economically viable, and sustainable CO₂ mitigation strategies. Among emerging solutions, CO₂ conversion technologies offer a transformative pathway by enabling the utilization of CO₂ as a renewable carbon feedstock for the production of fuels, chemicals, and materials, thereby promoting a circular carbon economy. The review begins by exploring foundational CO₂ capture and pre-treatment methods, emphasizing advanced materials, as well as integration strategies that directly couple capture with conversion processes as a gateway to improved CO2 conversion. Recent advancements in CO₂ conversion technologies, spanning thermochemical, electrochemical, photochemical, and biological domains are then covered. The integration of CO₂ conversion systems with renewable energy and industrial infrastructures is explored through case studies and commercialization efforts, highlighting opportunities for sector-wide decarbonization. Furthermore, the increasing role of artificial intelligence (AI) and machine learning (ML) in predictive modeling, catalyst design, and process optimization, as well as the techno-economic analyses that frame the practical deployment of these technologies is also presented. Persistent challenges including energy efficiency, long-term stability, product selectivity, and regulatory constraints are critically analyzed, and emerging solutions are proposed. The review concludes by outlining future research directions, including the development of next-generation technologies and strategies to promote interdisciplinary collaboration and public-private partnerships. By synthesizing cutting-edge advancements and identifying key barriers and opportunities, this work provides a roadmap for accelerating the global deployment of CO₂ conversion technologies toward a sustainable and decarbonized future.
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