金属-载体相互作用对二氧化碳甲烷化催化剂的调节策略及影响

Shuaishuai Lyu , Dejian Zhao , Hao Zhang , Hongwei Li , Fuli Wen , Qiuming Zhou , Rongjun Zhang , Yu Wu , Chaopeng Hou , Guofu Xia , Run Xu , Xingang Li
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引用次数: 0

摘要

二氧化碳甲烷化是解决可持续能源储存、空间探索和减少二氧化碳排放等全球性挑战的关键技术。近年来,这项技术引起了广泛的关注。为了真正实现二氧化碳甲烷化过程,设计稳定高效的催化剂是至关重要的。通过控制金属-载体的相互作用,可以有效地调节非均相催化剂的活性和选择性,这一策略已广泛应用于CO2甲烷化催化剂的设计中。事实上,由于金属-载体的相互作用,二氧化碳甲烷化催化剂的催化活性可以提高到25倍。本文综述了二氧化碳甲烷化非均相催化剂中金属-载体相互作用的研究进展。首先,我们将系统地讨论金属-载体相互作用对CO2甲烷化催化剂的影响,然后详细介绍其调制策略。通过定量分析,我们将指出改变催化剂载体的化学组成是提高催化性能的最有效方法,催化剂设计的首要目标是调节金属颗粒与载体之间的电子转移。我们还将概述这一前景广阔的领域的潜在研究方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Modulation strategy and effect of metal-support interaction over catalysts for carbon dioxide methanation

Modulation strategy and effect of metal-support interaction over catalysts for carbon dioxide methanation
Carbon dioxide (CO2) methanation is an essential technology for addressing global challenges such as sustainable energy storage, space exploration, and the reduction of CO2 emission. This technology has attracted broad attention in recent years. To really implement the CO2 methanation process, it is crucial to design stable and highly effective catalysts. The activity and selectivity of heterogeneous catalysts can be efficiently tuned by controlling the metal-support interaction, and this strategy has been widely used in the catalyst design for CO2 methanation. In fact, the catalytic activity can be enhanced by up to ∼25 times in a CO2 methanation catalyst due to metal-support interaction. In this review, we summarize the recent progress on metal-support interaction in heterogeneous catalysts for CO2 methanation. At first, we will systemically discuss the effect of metal-support interaction in CO2 methanation catalysts, followed by a detailed introduction to its modulation strategy. Through quantitative analysis, we will point out changing chemical composition of catalyst support is the most efficient method to enhance the catalytic performance, and the primary goal of catalyst design is the modulation of electron transfer between metal particles and the support. We will also sketch the potential research direction of this promising field.
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