Efficacy of zirconium hydroxide and cerium hydroxide for carbon dioxide adsorption and subsequent ethylene urea synthesis

吸附 二氧化碳 尿素 乙烯 无机化学 二氧化锆 化学 氢氧化物 核化学 材料科学 有机化学 冶金 催化作用
作者
Farzana Rahman,Yota kunii,Tomohito Kameda,Mir Tamzid Rahman,Yuko Saito,Shogo Kumagai,Toshiaki Yoshioka
出处
期刊:Journal of Cleaner Production [Elsevier BV]
卷期号:493: 144956-144956 被引量:4
标识
DOI:10.1016/j.jclepro.2025.144956
摘要

The elevating levels of atmospheric CO 2 present a dual challenge of environmental degradation and the underutilization of potential carbon resources. Addressing these issues, our study explores innovative adsorbent materials, Zirconium Hydroxide (Zr(OH)₄) and Cerium Hydroxide (Ce(OH)₄), synthesized via both co-precipitation and sol-gel methods, for their efficacy in CO 2 adsorption and conversion into ethylene urea (EU), a valuable chemical intermediate. Through meticulous characterization and comparative analysis, we discovered that sol-gel synthesized Zr(OH)₄ outperformed other synthesized adsorbents, displaying the highest pore volume (0.65 cm³/g) and average pore diameter (66.7 nm), indicative of internal hollow spaces and inter-particle pores, thereby enhancing porosity and CO₂ trapping efficiency. This material demonstrated a notable CO 2 adsorption capacity of 1.18 mmol/g, exceeding that of co-precipitated Zr(OH)₄ (0.92 mmol/g), co-precipitated Ce(OH)₄ (0.25 mmol/g), and sol-gel synthesized Ce(OH)₄ (0.45 mmol/g). Following CO₂ adsorption, Zr(OH)₄ and Ce(OH)₄ were utilized in a reaction with ethylene diamine (EDA) in a 2-propanol solvent, achieving successful synthesis of EU. Remarkably, at 160 °C, sol-gel derived Zr(OH)₄ produced the maximum yield of EU (0.23 mmol), surpassing co-precipitated Zr(OH)₄ (0.16 mmol), co-precipitated Ce(OH)₄ (0.12 mmol), and sol-gel Ce(OH)₄ (0.12 mmol). Our findings underscore the potential of employing Zr(OH)₄, particularly synthesized via the sol-gel method, as an efficient CO 2 adsorbent and accelerator in EU production. This research contributes to the field of CO 2 capture and utilization and opens avenues for developing cost-effective and environmentally friendly processes for synthesizing industrially relevant compounds. • Zr(OH)₄ and Ce(OH)₄, noble materials, synthesized via co-precipitation and sol-gel methods. • CO₂-adsorbing materials act as CO₂ reservoirs and accelerators for ethylene urea production. • Sol-gel Zr(OH)₄ with hollow spaces displayed superior CO₂ adsorption and ethylene urea production. • Transition metal hydroxides recommended for capturing, utilizing, and converting CO 2 into valuable compounds.
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