Lee Sumin, Lee Hyun Joo, Chung Seung Hwan, Lee Je Seung, Lim Sung Yul
Department of Chemistry, College of Science, Kyung Hee University 26 Kyungheedae-ro, Dongdaemun-gu, Seoul 02447, Republic of Korea.
ACS Omega. 2023 Dec 14;8(51):48704-48710. doi: 10.1021/acsomega.3c05023. eCollection 2023 Dec 26.
The development of environmentally friendly and efficient methods for the synthesis of ethylene carbonate (EC) is crucial for advancing carbon capture, utilization, and storage technologies. Herein, we present the synthesis of EC through the transesterification of urea with ethylene glycol (EG) using a zeolitic imidazolate framework (ZIF) derived Fe-doped ZnO catalyst (Fe;ZnO-ZIF). The Fe;ZnO-ZIF catalyst, prepared by incorporating Fe dopant atoms into a ZnO-ZIF template, demonstrates excellent catalytic activity, achieving high conversion of reactants and superior selectivity toward EC at 160 °C for 150 min under an applied vacuum (160 mmHg). Based on the thermogravimetric, X-ray spectroscopic, and temperature-programmed desorption analysis, the simultaneous presence of strong Lewis acidic and basic sites in Fe;ZnO-ZIF enables its excellent catalytic performance toward EC synthesis with high selectivity. Acidic sites activate the carbon center in urea, while basic sites facilitate the nucleophilic attack on urea by deprotonation of EG. This synergistic reaction pathway resulting from the interaction between the strong Lewis acidic and basic sites promotes nucleophilic attacks of EG on urea, leading to significantly higher conversion efficiency and selectivity, compared to the commercial benchmark ZnO. Although the establishment of a continuous reaction system which takes into account cyclability and stability of the catalysts is further required in the future, our research reported herein provides valuable insights into the design of synergistic, localized active sites for EC synthesis and contributes to the development of sustainable carbon utilization technologies for achievement of net-zero emissions.
开发环境友好且高效的碳酸乙烯酯(EC)合成方法对于推进碳捕获、利用和存储技术至关重要。在此,我们展示了使用沸石咪唑框架(ZIF)衍生的铁掺杂氧化锌催化剂(Fe;ZnO-ZIF)通过尿素与乙二醇(EG)的酯交换反应合成EC。通过将铁掺杂原子掺入ZnO-ZIF模板制备的Fe;ZnO-ZIF催化剂表现出优异的催化活性,在160℃、160 mmHg的真空条件下反应150分钟,实现了反应物的高转化率和对EC的优异选择性。基于热重分析、X射线光谱分析和程序升温脱附分析,Fe;ZnO-ZIF中同时存在的强路易斯酸性和碱性位点使其在EC合成中具有优异的催化性能和高选择性。酸性位点激活尿素中的碳中心,而碱性位点通过使EG去质子化促进对尿素的亲核攻击。与商业基准ZnO相比,由强路易斯酸性和碱性位点之间的相互作用产生的这种协同反应途径促进了EG对尿素的亲核攻击,从而导致显著更高的转化效率和选择性。尽管未来还需要进一步建立考虑催化剂循环性和稳定性的连续反应体系,但我们在此报道的研究为设计用于EC合成的协同、局部活性位点提供了有价值的见解,并有助于开发可持续的碳利用技术以实现净零排放。