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Dehydrogenative Coupling of Methanol for the Gas-Phase, One-Step Synthesis of Dimethoxymethane over Supported Copper Catalysts

机译:甲醇的脱氢偶联对于气相,二甲氧基甲烷在负载型铜催化剂中的一步合成

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摘要

Oxymethylene dimethyl ethers (OMEs), CH3-(OCH2)(n)-OCH3, n = 1-5, possess attractive low-soot diesel fuel properties. Methanol is a key precursor in the production of OMEs, providing an opportunity to incorporate renewable carbon sources via gasification and methanol synthesis. The costly production of anhydrous formaldehyde in the typical process limits this option. In contrast, the direct production of OMEs via a dehydrogenative coupling (DHC) reaction, where formaldehyde is produced and consumed in a single reactor, may address this limitation. We report the gas-phase DHC reaction of methanol to dimethoxymethane (DMM), the simplest OME, with n = 1, over bifunctional metal-acid catalysts based on Cu. A Cu-zirconia-alumina (Cu/ZrAlO) catalyst achieved 40% of the DMM equilibrium-limited yield under remarkably mild conditions (200 degrees C, 1.7 atm). The performance of the Cu/ZrAlO catalyst was attributed to metallic Cu nanoparticles that enable dehydrogenation and a distribution of acid strengths on the ZrAlO support, which reduced the selectivity to dimethyl ether compared to a that obtained with a Cu/Al2O3 catalyst. The DMM formation rate of 6.1 h(-1 )compares favorably against well-studied oxidative DHC approaches over non-noble, mixed-metal oxide catalysts. The results reported here set the foundation for further development of the DHC route to OME production, rather than oxidative approaches.
机译:氧亚甲基二甲醚(肿块),CH3-(OCH2)(N) - CH 3,N = 1-5具有吸引力的低烟灰柴油燃料特性。甲醇是肿瘤生产中的关键前体,提供了通过气化和甲醇合成掺入可再生碳源的机会。典型过程中无水甲醛的昂贵生产限制了这种选择。相反,通过脱氢偶联(DHC)反应的甲醚直接产生甲醛,在单一反应器中产生并消耗甲醛,可以解决这种限制。我们向基于Cu的双官能金属 - 酸催化剂报告甲醇至二甲氧基甲烷(DMM)的气相DHC反应,最简单的OME,在N = 1上。 Cu-氧化锆 - 氧化铝(Cu / Zrolo)催化剂在非常温和的条件下实现了40%的DMM平衡限制产量(200摄氏度,1.7型atm)。 Cu / Zralo催化剂的性能归因于金属Cu纳米颗粒,其能够使ZrORO载体上的脱氢和酸强度分布,其与用Cu / Al 2 O 3催化剂获得的相比,将对二甲醚的选择性降低。 6.1h(-1)的DMM形成速率有利地与非贵金属,混合金属氧化物催化剂的良好研究的氧化DHC接近相比。结果报告,此处设定了进一步发展DHC路线到OME生产的基础,而不是氧化方法。

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