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通过吸附聚合物稳定化的镍纳米颗粒对增强碳固存的催化活性。

Catalytic activity of nickel nanoparticles stabilized by adsorbing polymers for enhanced carbon sequestration.

作者信息

Seo Seokju, Perez Gabriela Alvarez, Tewari Ketan, Comas Xavier, Kim Myeongsub

机构信息

Department of Ocean and Mechanical Engineering, Florida Atlantic University, 777 Glades Road, Boca Raton, FL33431, USA.

Department of Mechanical Engineering, Nirma University, Sarkhej-Gandhinagar Highway, Chandlodia, Gota, Ahmedabad, Gujarat, 382481, India.

出版信息

Sci Rep. 2018 Aug 6;8(1):11786. doi: 10.1038/s41598-018-29605-1.

Abstract

This work shows the potential of nickel (Ni) nanoparticles (NPs) stabilized by polymers for accelerating carbon dioxide (CO) dissolution into saline aquifers. The catalytic characteristics of Ni NPs were investigated by monitoring changes in diameter of CO microbubbles. An increase in ionic strength considerably reduces an electrostatic repulsive force in pristine Ni NPs, thereby decreasing their catalytic potential. This study shows how cationic dextran (DEX), nonionic poly(vinyl pyrrolidone) (PVP), and anionic carboxy methylcellulose (CMC) polymers, the dispersive behaviors of Ni NPs can be used to overcome the negative impact of salinity on CO dissolution. The cationic polymer, DEX was less adsorbed onto NPs surfaces, thereby limiting the Ni NPs' catalytic activity. This behavior is due to a competition for Ni NPs' surface sites between the cation and DEX under high salinity. On the other hand, the non/anionic polymers, PVP and CMC could be relatively easily adsorbed onto anchoring sites of Ni NPs by the monovalent cation, Na. Considerable dispersion of Ni NPs by an optimal concentration of the anionic polymers improved their catalytic capabilities even under unfavorable conditions for CO dissolution. This study has implications for enhancing geologic sequestration into deep saline aquifers for the purposes of mitigating atmospheric CO levels.

摘要

这项工作展示了由聚合物稳定的镍(Ni)纳米颗粒(NPs)在加速二氧化碳(CO₂)溶解到盐水层方面的潜力。通过监测CO₂微泡直径的变化来研究Ni NPs的催化特性。离子强度的增加会显著降低原始Ni NPs中的静电排斥力,从而降低其催化潜力。本研究表明,通过阳离子葡聚糖(DEX)、非离子聚乙烯吡咯烷酮(PVP)和阴离子羧甲基纤维素(CMC)聚合物,Ni NPs的分散行为可用于克服盐度对CO₂溶解的负面影响。阳离子聚合物DEX较少吸附在NPs表面,从而限制了Ni NPs的催化活性。这种行为是由于在高盐度下阳离子与DEX之间对Ni NPs表面位点的竞争。另一方面,非离子/阴离子聚合物PVP和CMC可以相对容易地通过单价阳离子Na吸附到Ni NPs的锚固位点上。即使在不利于CO₂溶解的条件下,通过最佳浓度的阴离子聚合物对Ni NPs进行相当程度的分散也提高了它们的催化能力。这项研究对于增强向深部盐水层的地质封存以降低大气中的CO₂水平具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4d82/6079042/64cdcacbab49/41598_2018_29605_Fig1_HTML.jpg

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