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    铈基低共熔溶剂制备纳米CeO2催化合成2,4-甲苯二氨基甲酸甲酯

    Catalytic synthesis of dimethyltoluene-2,4-dicarbamate over nano CeO2 prepared by cerium based DES

    • 摘要: 以铈基低共熔溶剂(DESs)同时作为铈源和模板剂,制备了纳米CeO2催化剂,并将其应用于2,4-甲苯二胺(TDA)与碳酸二甲酯(DMC)催化合成2,4-甲苯二氨基甲酸甲酯(TDC)的反应体系中。系统对比了DES模板法、水热法、机械研磨法制备的CeO2及商用CeO2催化性能的差异。结果表明,DES模板法可有效抑制CeO2晶粒生长,制备的CeO2具有更小的晶粒尺寸、更高的氧空位含量和酸量,同时其表面中强酸中心和L酸中心的占比较高,因此其催化性能最优。在反应温度为170 ℃,反应时间为8 h,mcatal/mTDA = 1,nDMC/nTDA = 20的反应条件下,TDA转化率为100.0%,TDC选择性为82.6%。此外,采用该方法制备的催化剂在TDC合成反应中表现出良好的稳定性。进一步通过调变焙烧温度制备了一系列不同粒径的CeO2催化剂,发现CeO2粒径会影响其氧空位含量和酸中心分布,从而影响其催化性能。TDC的选择性则随粒径的增大而减少,当CeO2粒径小于8.4 nm时,TDA可完全转化,继续增大粒径则TDA的转化率随之下降。

       

      Abstract: Nano CeO2 catalysts were prepared using cerium-based deep eutectic solvents (DESs) as both the cerium source and template, and were subsequently applied in the catalytic synthesis of methyl 2,4-toluenedicarbamate (TDC) from 2,4-toluenediamine (TDA) and dimethyl carbonate (DMC). The catalytic performances of CeO2 prepared by the DES template method, hydrothermal method, mechanical grinding method, and commercial CeO2 were systematically compared. The results showed that the DES template method effectively inhibited the grain growth of CeO2, yielding CeO2 with smaller grain size, higher oxygen vacancy content and acid amount, as well as a higher proportion of medium-strong acid sites and Lewis acid sites on its surface. Consequently, the DES-derived CeO2 exhibited the best catalytic performance. Under the reaction conditions of 170 ℃, 8 h, mcatal/mTDA = 1, and nDMC/nTDA = 20, the TDA conversion reached 100.0% and the TDC selectivity was 82.6%. Moreover, the catalyst prepared by this method demonstrated good stability in the TDC synthesis reaction. Furthermore, a series of CeO2 catalysts with different particle sizes were prepared by adjusting the calcination temperature. It was found that the particle size of CeO2 influenced its oxygen vacancy content and acid site distribution, thereby affecting its catalytic performance: the selectivity to TDC decreased with increasing particle size. When the CeO2 particle size was smaller than 8.4 nm, TDA was completely converted; further increase in particle size led to a decrease in TDA conversion.

       

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