Citation: Zhanling Ma, Xiangang Ma, Youming Ni, Hongchao Liu, Wenliang Zhu, Xinwen Guo, Zhongmin Liu. HZSM-35 zeolite catalyzed aldol condensation reaction to prepare acrylic acid and its ester:Effect of its acidic property[J]. Chinese Journal of Catalysis, 2018, 39(11): 1762-1769. doi: 10.1016/S1872-2067(18)63145-6
HZSM-35分子筛酸性质对甲缩醛和乙酸甲酯羟醛缩合反应的影响
本文以甲缩醛(DMM)为甲醛源,创新性地采用固体硅铝分子筛为酸性催化剂,催化DMM和MAc发生羟醛缩合反应来制备丙烯酸.硅铝分子筛具有较高的活性,可高效地催化羟醛缩合反应,且具有很好的再生性能,即使催化剂寿命较短,也可采用流化床或移动床等反应器进行工业化,因此具有良好的工业化前景.硅铝分子筛中常含有Brönsted酸和Lewis酸,为试图说明羟醛缩合反应的真正活性位点,我们以羟醛缩合反应性能最佳的HZSM-35分子筛为研究目标.
首先,利用红外研究HZSM-35分子筛的酸性质.发现分子筛中桥羟基提供Brönsted酸,外骨架铝物种提供Lewis酸.通过对桥羟基红外峰一阶求导,发现其对称性较差,表明Brönsted酸在HZSM-35分子筛孔道中分布不均匀.利用红外分峰手段,得知约51%的Brönsted酸分布于八元环和六元环交叉所形成的笼(cage)中,约23%分布于十元环孔道,26%分布于八元环孔道中.同时,利用吡啶在分子筛HZSM-35不同温度下的吸附情况验证了这一分峰结果.其次,利用钠离子交换方法制备不同Brönsted酸浓度的ZSM-35分子筛,经吡啶红外表征得知,Brönsted酸浓度随钠离子交换程度增加而逐渐降低,而Lewis酸浓度并未改变;在羟醛缩合反应性能中,丙烯酸及丙烯酸甲酯选择性和收率均随Brönsted酸浓度增加而逐渐升高,考虑到Lewis酸浓度并未变化,可知Brönsted酸是羟醛缩合反应性能的活性位点,其浓度增加有利于羟醛缩合反应性能的提高.同时,对比不同ZSM-35分子筛失活现象,高Brönsted酸浓度时分子筛重积炭量最高,这可能是由于Brönsted催化不饱和产物关环生成芳烃物种或(和)发生氢转移过程所导致.
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关键词:
- 羟醛缩合反应
- / 乙酸甲酯
- / HZSM-35分子筛
- / Brönsted位
- / 丙烯酸
English
HZSM-35 zeolite catalyzed aldol condensation reaction to prepare acrylic acid and its ester:Effect of its acidic property
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Key words:
- Aldol condensation
- / Methyl acetate
- / ZSM-35 zeolite
- / Brӧnsted acid
- / Acrylic acid
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