Fuels and Energy Technology Institute, Curtin University of Technology, G.P.O. Box U1987, Perth, WA 6845, Australia.
Bioresour Technol. 2011 Nov;102(21):10104-13. doi: 10.1016/j.biortech.2011.08.040. Epub 2011 Aug 18.
The formation of humin-type polymers and other products during exposure of glucose to methanol/water mixtures with methanol/water mass ratios from 10 to 0.22 in the presence of the acid catalyst Amberlyst 70 was investigated. In water-rich medium (methanol/water mass ratio: 0.22), dehydration of glucose produced 5-(hydroxymethyl)furfural (HMF), furfural, and substantial amounts of polymer. In methanol-rich medium (methanol/water mass ratio: 10), the hydroxyl and carbonyl groups of glucose, HMF or furfural were protected via etherification and acetalisation. These protections stabilized these reactive compounds and significantly lowered the polymer formation (1.43% of the glucose loaded). The polymerization of glucose and HMF was also favored at high temperatures and long residence times. Conversely, high catalyst dosage mainly accelerated the conversion of glucose to methyl levulinate. Thus, the polymerization of glucose and HMF can be suppressed in methanol/water mixtures with high methanol ratios, at low temperatures and short residence times.
在酸性催化剂 Amberlyst 70 的存在下,研究了葡萄糖在甲醇/水混合溶剂中暴露于甲醇/水质量比为 10 至 0.22 的条件下,形成腐植酸型聚合物和其他产物的过程。在富水介质(甲醇/水质量比:0.22)中,葡萄糖脱水生成 5-(羟甲基)糠醛(HMF)、糠醛和大量聚合物。在甲醇富相(甲醇/水质量比:10)中,葡萄糖、HMF 或糠醛的羟基和羰基通过醚化和缩醛化得到保护。这些保护稳定了这些反应性化合物,并显著降低了聚合物的形成(负载葡萄糖的 1.43%)。葡萄糖和 HMF 的聚合也在高温和长停留时间下得到促进。相反,高催化剂用量主要加速了葡萄糖向甲基戊内酯的转化。因此,在甲醇比例较高的甲醇/水混合物中,可以在低温和短停留时间下抑制葡萄糖和 HMF 的聚合。