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日用化学工业 ›› 2022, Vol. 52 ›› Issue (7): 717-723.doi: 10.3969/j.issn.1001-1803.2022.07.005

• 开发与应用 • 上一篇    下一篇

磁性碳基固体酸制备及其在糖苷合成中的应用研究

喻红梅1,周峰2,华平1,*(),李建华1,钱锋1   

  1. 1.南通大学 化学化工学院,江苏 南通 226000
    2.南通醋酸纤维有限公司,江苏 南通 226000
  • 收稿日期:2021-09-17 修回日期:2022-06-24 出版日期:2022-07-22 发布日期:2022-07-21
  • 通讯作者: 华平

Study on preparation method of magnetic carbon-based solid acid and its application in glycoside synthesis

Yu Hongmei1,Zhou Feng2,Hua Ping1,*(),Li Jianhua1,Qian Feng1   

  1. 1. College of Chemistry and Chemical Engineering, Nantong University, Nantong, Jiangsu 226000, China
    2. Nantong Cellulose Fibers Co., Ltd., Nantong, Jiangsu 226000, China
  • Received:2021-09-17 Revised:2022-06-24 Online:2022-07-22 Published:2022-07-21
  • Contact: Ping Hua

摘要:

以四氧化三铁为磁核,可溶性淀粉为基质,对甲苯磺酸为磺酸基来源,分别采用分步法和一步法制得磁性碳基固体酸催化剂Fe3O4/C-SO3H(A)和Fe3O4/C-SO3H(B)。利用SEM、XRD、FT-IR、TG、振动样品磁强计(简称VSM)等手段对催化剂进行表征,并将两种催化剂的活性进行比较,活性好的催化剂应用于辛基葡萄糖苷的合成。结果发现,Fe3O4/C-SO3H(A)为核壳结构,粒径大小约为30 nm;Fe3O4/C-SO3H(B)表现为具有一定多孔结构的无定形颗粒物;两种催化剂均具有较好的热稳定性和磁学性能。相比于Fe3O4/C-SO3H(B),Fe3O4/C-SO3H(A)在酸含量、葡萄糖转化率上表现更佳,因此选用Fe3O4/C-SO3H(A)作为辛基葡萄糖苷的合成催化剂。当Fe3O4/C-SO3H(A)用量为葡萄糖质量7%,正辛醇和葡萄糖的摩尔比为9∶1,反应温度为140 ℃时,葡萄糖转化率可达到98.5%。催化剂可通过简单的磁场分离进行重复利用,重复使用3次后,葡萄糖的转化率仍在92%以上。

关键词: 磁性催化剂, 固体酸催化剂, 结构表征, 辛基葡萄糖苷, 重复使用

Abstract:

Fe3O4/C-SO3H(A) and Fe3O4/C-SO3H(B) were magnetic carbon-based solid acid catalysts. Fe3O4/C-SO3H(A) was synthesized by step-by-step method. Fe3O4/C-SO3H(B) was synthesized by one-step method. They were prepared by ferric oxide, biomass carbon and sulfonic acid source. Ferric oxide was the magnetic core, while soluble starch was the matrix, and p-toluenesulfonic acid was the source of sulfonic acid group. The structure of the catalysts was characterized by SEM, XRD,FT-IR, TG and Vibrating Sample Magnetometer (VSM). The synthesis of octyl glucoside was used as a probe. The activity of the catalyst was measured by the conversion of glucose and catalyst acid content. The activity of two catalysts was compared, the catalyst with good activity was applied to the synthesis of octyl glucoside, and the synthesis conditions of octyl glucoside were optimized. The optimization factors were investigated, such as the amount of catalyst, the mole ratio of octanol to glucose, the reaction temperature, the structure of octyl glucoside and the repeatability of catalyst. The results show that the crystal structure of Fe3O4 magnetic particles has not changed significantly after carbonization and sulfonation. Fe3O4 magnetic particles still retain good magnetic properties, and can be quickly separated from the system under the action of external magnetic field. Catalyst Fe3O4/C-SO3H(A) is a core-shell structure with a particle size of about 30 nm. Fe3O4/C-SO3H(B) is amorphous particles with porous structure. Both catalysts have good thermal stability and magnetic properties. The acid content of Fe3O4/C-SO3H(A) is 1.17 mmol/g, and the glucose conversion rate in the probe reaction is 97.9%. The acid content of Fe3O4/C-SO3H(B) is 0.91 mmol/g, and the glucose conversion rate in the probe reaction is 95.4%. Compared with Fe3O4/C-SO3H (B), Fe3O4/C-SO3H (A) has better performance in acid content, and glucose conversion. Therefore, Fe3O4/C-SO3H(A) is selected as the catalyst for the synthesis of octyl glucoside. Fe3O4/C-SO3H(A) is used for octyl glucoside process optimization. When the amount of Fe3O4/C-SO3H(A) is 7% (w/%) of glucose, the molar ratio of n-octanol to glucose is 9 to 1, and the reaction temperature is 140 ℃, the conversion rate of glucose can reach 98.5%. The catalyst can be reused by simple magnetic field separation. After repeated using 3 times, the conversion rate of the glucose reaches more than 92%.

Key words: magnetic catalyst, solid acid catalyst, structural characterization, octyl glucoside, repeated use

中图分类号: 

  • TQ423