In Situ Dilatometry Measurements of Deformation of Microporous Carbon Induced by Temperature and Carbon Dioxide Adsorption under High Pressures

IF 2.5 Q3 CHEMISTRY, PHYSICAL
A. Shkolin, I. Men’shchikov, E. Khozina, A. Fomkin
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Abstract

Adsorption-based carbon dioxide capture, utilization, and storage technologies aim to mitigate the accumulation of anthropogenic greenhouse gases that cause climate change. It is assumed that porous carbons as adsorbents are able to demonstrate the effectiveness of these technologies over a wide range of temperatures and pressures. The present study aimed to investigate the temperature-induced changes in the dimensions of the microporous carbon adsorbent Sorbonorit 4, as well as the carbon dioxide adsorption, by using in situ dilatometry. The nonmonotonic changes in the dimensions of Sorbonorit 4 under vacuum were found with increasing temperature from 213 to 573 K. At T > 300 K, the thermal linear expansion coefficient of Sorbonorit 4 exceeded that of a graphite crystal, reaching 5 × 10−5 K at 573 K. The CO2 adsorption onto Sorbonorit 4 gave rise to its contraction at low temperatures and pressures or to its expansion at high temperatures over the entire pressure range. An inversion of the temperature dependence of the adsorption-induced deformation (AID) of Sorbonorit-4 was observed. The AID of Sorbonorit-4 and differential isosteric heat of CO2 adsorption plotted as a function of carbon dioxide uptake varied within the same intervals of adsorption values, reflecting the changes in the state of adsorbed molecules caused by contributions from adsorbate–adsorbent and adsorbate–adsorbate interactions. A simple model of nanoporous carbon adsorbents as randomly oriented nanocrystallites interconnected by a disordered carbon phase is proposed to represent the adsorption- and temperature-induced deformation of nanocrystallites with the macroscopic deformation of the adsorbent granules.
高温和高压下二氧化碳吸附引起的微孔碳变形的原位膨胀测量
基于吸附的二氧化碳捕获、利用和储存技术旨在减缓导致气候变化的人为温室气体的积累。假设多孔碳作为吸附剂能够在广泛的温度和压力范围内证明这些技术的有效性。本文采用原位膨胀法研究了微孔碳吸附剂sorbonorit4在温度变化下的尺寸变化以及对二氧化碳的吸附。在真空条件下,随着温度从213到573 K的升高,sorbonorit4的尺寸呈非单调变化。在tb> 300 K时,Sorbonorit 4的热膨胀系数超过石墨晶体,在573 K时达到5 × 10−5 K。二氧化碳在Sorbonorit 4上的吸附使其在低温和低压下收缩,或在整个压力范围内的高温下膨胀。对Sorbonorit-4吸附诱导变形(AID)的温度依赖性进行了反演。在相同的吸附值区间内,Sorbonorit-4的AID和CO2吸附的微分等等热随二氧化碳吸收量的变化而变化,反映了吸附剂-吸附剂和吸附剂-吸附剂相互作用引起的被吸附分子状态的变化。提出了纳米多孔碳吸附剂作为无序碳相连接的随机取向纳米晶体的简单模型,以表示吸附和温度引起的纳米晶体变形与吸附剂颗粒的宏观变形。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Colloids and Interfaces
Colloids and Interfaces CHEMISTRY, PHYSICAL-
CiteScore
3.90
自引率
4.20%
发文量
64
审稿时长
10 weeks
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