CO2 capture performance of ZrO2-doped Na2CO3/γ-Al2O3 adsorbent

IF 6.3 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES Journal of Environmental Sciences-china Pub Date : 2024-10-10 DOI:10.1016/j.jes.2024.09.027
Zelin Xu, Jiliang Ma, Xiaoping Chen, Zhongji Song, Daoyin Liu, Cai Liang
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Abstract

Sodium-based adsorbents (Na2CO3/γ-Al2O3) exhibit significant potential for commercial utilization in CO2 capture. Nevertheless, the requirement for high desorption temperatures poses challenges in terms of the high-quality heat needed for desorption. This study integrated ZrO2 doping into a sodium-based adsorbent to enhance its CO2 capture performance and lower its desorption temperature. The research investigated the CO2 adsorption capacity, reaction rate, and desorption characteristics of the ZrO2-doped Na2CO3/γ-Al2O3 adsorbents in detail. Additionally, the catalytic mechanism of ZrO2 was elucidated through Density Functional Theory calculations. The results showed that ZrO2 doping increased the adsorption rate and capacity of the adsorbent and reduced the desorption energy consumption. Desorption reaction activation energy reduced to 44.8 kJ/mol. The adsorbent doped with 3 wt.% ZrO2 demonstrated the highest adsorption capacity and rate under optimal conditions, with a reaction temperature of 45 ℃, an adsorption capacity of 1.66 mmol/g, and a carbon conversion rate of 80.2 %. ZrO2 acted as a catalyst, enhancing CO2 and H2O adsorption, and facilitated CO2 desorption in the sodium-based adsorbent by forming [ZrO(OH)]+ and OH through H2O adsorption activation. The lower energy barrier (0.17 eV) for the dissociative adsorption pathway of H2O molecules on the ZrO2 surface further supported the role of ZrO2 in enhancing the overall adsorption performance of the adsorbent in the carbon capture process. Ultimately, the ZrO2-doped Na2CO3/γ-Al2O3 adsorbent was identified as having low desorption energy consumption, high adsorption capacity, and rate, offering potential cost reductions in CO2 capture and representing a promising adsorbent for this application.

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zro2掺杂Na2CO3/γ-Al2O3吸附剂的CO2捕集性能
钠基吸附剂(Na2CO3/γ-Al2O3)在CO2捕集方面具有巨大的商业应用潜力。然而,对高解吸温度的要求在解吸所需的高质量热量方面提出了挑战。本研究将ZrO2掺杂到钠基吸附剂中,以提高其CO2捕获性能并降低其解吸温度。研究了zro2掺杂的Na2CO3/γ-Al2O3吸附剂对CO2的吸附能力、反应速率和解吸特性。此外,通过密度泛函理论计算,阐明了ZrO2的催化机理。结果表明,ZrO2的掺杂提高了吸附剂的吸附速率和吸附容量,降低了解吸能耗。脱附反应活化能降至44.8 kJ/mol。在最佳条件下,ZrO2掺杂量为3 wt.%的吸附剂的吸附量和吸附速率最高,反应温度为45℃,吸附量为1.66 mmol/g,碳转化率为80.2%。ZrO2作为催化剂,增强CO2和H2O的吸附,并通过H2O吸附活化形成[ZrO(OH)]+和OH−,促进CO2在钠基吸附剂中的解吸。H2O分子在ZrO2表面解离吸附途径的较低能垒(0.17 eV)进一步支持了ZrO2在碳捕获过程中增强吸附剂整体吸附性能的作用。最终,zro2掺杂的Na2CO3/γ-Al2O3吸附剂被确定为具有低解吸能耗,高吸附容量和速率的吸附剂,可以降低二氧化碳捕获的潜在成本,并代表了该应用的有前途的吸附剂。
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来源期刊
Journal of Environmental Sciences-china
Journal of Environmental Sciences-china 环境科学-环境科学
CiteScore
13.70
自引率
0.00%
发文量
6354
审稿时长
2.6 months
期刊介绍: The Journal of Environmental Sciences is an international journal started in 1989. The journal is devoted to publish original, peer-reviewed research papers on main aspects of environmental sciences, such as environmental chemistry, environmental biology, ecology, geosciences and environmental physics. Appropriate subjects include basic and applied research on atmospheric, terrestrial and aquatic environments, pollution control and abatement technology, conservation of natural resources, environmental health and toxicology. Announcements of international environmental science meetings and other recent information are also included.
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