甲烷化
原位
Boosting(机器学习)
对偶(语法数字)
材料科学
化学
化学工程
催化作用
纳米技术
计算机科学
有机化学
工程类
人工智能
艺术
文学类
作者
Pu Huang,Jie Chu,Zhouzhou Zhang,Huan He,Yafei Guo,Yingju Yang,Chuanwen Zhao
标识
DOI:10.1021/acssuschemeng.5c00894
摘要
In this study, a Ni/CaO dual-functional material with a frustrated Lewis pair (FLP) structure was synthesized through the codoping of Al and Zr for integrated CO2 capture and methanation applications. The formation of FLPs was confirmed using CO2-TPD, EPR, and NH3-TPD, which showed enhanced acid–base properties due to the creation of oxygen vacancies (acting as Lewis bases) and the introduction of Zr4+ (acting as a Lewis acid). This unique acid–base environment facilitated efficient CO2 activation and proton transfer. In situ diffuse reflectance infrared Fourier transform spectroscopy identified key intermediates such as CO*, indicating that in situ methanation follows a dissociation path. DFT calculations demonstrated that the FLP structure lowers the energy barrier for COOH* to CO* conversion, while Zr4+ accelerated the C–H bond formation. Compared to the pristine Ni/CaO material without FLP structures, the Ni10Ca80Al5Zr5 material with FLP structures exhibits a significant enhancement in performance, with CO2 adsorption capacity increasing from 9.89 to 12.51 mmol/g and CH4 yield rising from 3.68 to 7.46 mmol/g. Over 20 cycles, the CO2 conversion rate and CH4 selectivity of Ni10Ca80Al5Zr5 only slightly decreased by 0.45 and 4.6%, respectively. The CO2 adsorption capacity decreased to 9.35 mmol/g in the first 15 cycles and then remained stable. This study demonstrates that Al and Zr codoping improves the cyclic stability and methanation activity of Ni/CaO dual-functional materials.
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