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镍纳米颗粒催化水溶液中一氧化碳水合反应的有效性及分子机制研究

Addressing the Effectiveness and Molecular Mechanism of the Catalytic CO Hydration in Aqueous Solutions by Nickel Nanoparticles.

作者信息

Sinopoli Alessandro, Liu Ziao, Abotaleb Ahmed, Alkhateeb Alaa, Gladich Ivan

机构信息

Qatar Environment and Energy Research Institute, Hamad Bin Khalifa University, P. O. Box 34410, Doha, Qatar.

Department of Earth and Environmental Science and Department of Chemistry, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.

出版信息

ACS Omega. 2023 Dec 26;9(1):771-780. doi: 10.1021/acsomega.3c06676. eCollection 2024 Jan 9.

Abstract

Hydration of carbon dioxide in water solution is the rate limiting step for the CO mineralization process, a process which is at the base of many carbon capture and utilization (CCU) technologies aiming to convert carbon dioxide to added-value products and mitigate climate change. Here, we present a combined experimental and computational study to clarify the effectiveness and molecular mechanism by which nickel nanoparticles, NiNPs, may enhance CO hydration in aqueous solutions. Contrary to previous literature, our kinetic experiments recording changes of pHs, conductivity, and dissolved carbon dioxide in solution reveal a minimal effect of the NiNPs in catalyzing CO hydration. Our atomistic simulations indicate that the Ni metal surface can coordinate only a limited number of water molecules, leaving uncoordinated metal sites for the binding of carbon dioxide or other cations in solution. This deactivates the catalyst and limits the continuous re-formation of a hydroxyl-decorated surface, which was a key chemical step in the previously suggested Ni-catalyzed hydration mechanism of carbon dioxide in aqueous solutions. At our experimental conditions, which expand the investigation of NiNP applicability toward a wider range of scenarios for CCU, NiNPs show a limited catalytic effect on the rate of CO hydration. Our study also highlights the importance of the solvation regime: while Ni surfaces may accelerate carbon dioxide hydration in water restricted environments, it may not be the case in fully hydrated conditions.

摘要

二氧化碳在水溶液中的水合作用是CO矿化过程的限速步骤,该过程是许多碳捕获与利用(CCU)技术的基础,这些技术旨在将二氧化碳转化为高附加值产品并缓解气候变化。在此,我们开展了一项结合实验与计算的研究,以阐明镍纳米颗粒(NiNPs)增强水溶液中CO水合作用的有效性及分子机制。与先前的文献相反,我们记录溶液pH值、电导率和溶解二氧化碳变化的动力学实验表明,NiNPs对催化CO水合作用的影响极小。我们的原子模拟表明,Ni金属表面只能配位有限数量的水分子,从而留下未配位的金属位点用于结合溶液中的二氧化碳或其他阳离子。这使催化剂失活,并限制了羟基修饰表面的持续重新形成,而这是先前提出的Ni催化二氧化碳在水溶液中水合作用机制中的关键化学步骤。在我们的实验条件下,该条件将NiNP适用性的研究扩展到更广泛的CCU场景,NiNPs对CO水合速率的催化作用有限。我们的研究还强调了溶剂化状态的重要性:虽然Ni表面在水受限环境中可能会加速二氧化碳水合作用,但在完全水合条件下可能并非如此。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fdff/10785337/d2ffbc435d38/ao3c06676_0001.jpg

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