疏水性固体酸H3PW12O40/HZSM-5催化合成丙烯酸正丁酯

姜亚洁1;阮运进1,2;李想1;曹维良1;张敬畅1*

北京化工大学学报(自然科学版) ›› 2007, Vol. 34 ›› Issue (3) : 258-262.

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北京化工大学学报(自然科学版) ›› 2007, Vol. 34 ›› Issue (3) : 258-262.
化学与化学工程

疏水性固体酸H3PW12O40/HZSM-5催化合成丙烯酸正丁酯

  • 姜亚洁;阮运进,;李想;曹维良;张敬畅*
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Preparation of butyl acrylate catalyzed by a hydrophobic solid acid catalyst-H3PW12O40 supported on HZSM-5

  • JIANG YaJie1;JUAN JoonChing1,2;LI Xiang1;CAO WeiLiang1;ZHANG JingChang1

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摘要

制备了负载型疏水性固体酸催化剂H3PW12O40/HZSM-5,并将该疏水性固体酸催化剂用于丙烯酸(简称AA)与正丁醇的酯化反应中。结果表明,硅铝摩尔比为60的HZSM-5负载质量分数为40%的H3PW12O40,180℃干燥2h,H3PW12O40/HZS-5催化剂的活性最高,丙烯酸转化率可达96.44%。H3PW12O40/HZSM-5催化剂循环使用4次,丙烯酸的转化率仍保持在71.98%。采用XRD、FTIR以及原位红外对催化剂的结构和酸性进行了表征,测试结果均表明H3PW12O40较好的分散于HZSM的表面,在催化剂表面存在Lewis酸和Brnosted酸,且其负载型疏水性固体酸H3PW12O40/HZSM-5的酸量、催化活性和疏水性能均高于单组分H3PW12O40

Abstract

A novel solid acid catalyst, H3PW12O40(HPW) supported on HZSM-5, has been prepared for use in the esterification of acrylic acid (AA) with n-butanol. The molar ratios of Si to Al in the support, HPW loading and calcination temperature were optimized. The activity of the catalyst was found to be maximized when a material with w(H3PW12O40)=40% was calcined at 180℃ for 2h, with the conversion of AA being 96.44%. After being reused 4 times, the measured conversion of AA was still over 70%. The catalysts were characterized by FTIR and XRD and their acidity was measured by in situ FTIR. The results indicate that HPW was successfully supported on the HZSM-5 with a high degree of dispersion on the support surface. Bands at 1525cm-1 and 1686cm-1, characteristic of acid sites, were observed in the in situ FTIR spectra of HPW/HZSM-5 after adsorption of ammonia, indicating that HPW/HZSM-5 has both Lewis acid sites and Bronsted acid sites.

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姜亚洁1;阮运进1,2;李想1;曹维良1;张敬畅1*. 疏水性固体酸H3PW12O40/HZSM-5催化合成丙烯酸正丁酯[J]. 北京化工大学学报(自然科学版), 2007, 34(3): 258-262

JIANG YaJie1;JUAN JoonChing1,2;LI Xiang1;CAO WeiLiang1;ZHANG JingChang1

.
Preparation of butyl acrylate catalyzed by a hydrophobic solid acid catalyst-H3PW12O40 supported on HZSM-5[J]. Journal of Beijing University of Chemical Technology, 2007, 34(3): 258-262

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