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将壳聚糖和丙烯酸接枝共聚,在戊二醛为交联剂条件下制备壳聚糖-聚丙烯酸微球,研究其对茶末中茶多酚的吸附性能,探讨壳聚糖-聚丙烯酸微球用量、温度、时间、pH值等因素对吸附效果的影响。静态吸附结果表明:转速对吸附的影响可忽略,茶多酚的吸附率随壳聚糖-聚丙烯酸微球用量、时间和温度增加而增加;壳聚糖-聚丙烯酸微球对茶多酚的吸附符合Freundlich等温模型,为优惠吸附;吸附过程符合准二级动力学模型。
Abstract:On the one hand, the chitosan-poly(acrylic acid) microspheres were prepared by graft polymerization of acrylic acid in chitosan solution with the cross-linking of glutaraldehyde and their adsorption properties on tea polyphenols in tea dust were studied. On the other hand, effects of chitosan-poly(acrylic acid) microspheres dosage, temperature, time and pH on the adsorption capacity were discussed. The results of static adsorption experiments are listed as follows. First, the effect of stirring speed on adsorption was negligible. Second, the adsorption rate of tea polyphenols increased with the rise of chitosan-poly(acrylic acid) microspheres dosage, time and temperature. Third, the adsorption behavior of chitosan-poly(acrylic acid) microspheres for tea polyphenols conformed to the Freundlich isothermal model, which was a preferential adsorption. Last, the adsorption process corresponded with a quasi-second-order kinetic model.
[1]葛天睿,黄雪君,张娜,等.茶多酚在医药和食品领域的应用研究进展[J].食品安全质量检测学报,2024,15(17):1-9.
[2]LIU S M,OU S Y,HUANG H H.Green tea polyphenols induce cell death in breast canser MCF-7 cells through Induction of cell cycle arrest and mitochondrial-mediated apoptosis[J].Biomedicine & Biotechnology,2017,18(2):89-98.
[3]林勇,谢思玲,柯菀萍,等.安化黑茶的降血糖作用及其机理[J].中国茶叶,2023,45(2):1-7.
[4]许婧,黄友谊,黄进,等.茶叶不同提取物及不同茶叶对结核分枝杆菌抑制作用的研究[J].茶叶科学,2024,44(2):341-349.
[5]ZHANG Z C,ZHANG X C,BI K Y,et al.Potential protective mechanisms of green tea polyphenol EGCG against COVID-19[J].Trends in Food Science & Technology,2021,114:11-24.
[6]余春燕,朱坤,黄建安,等.茶多酚对心肌保护作用的研究进展[J].食品科学,2022,43(3):296-305.
[7]许晨新,杨海东,张思访,等.响应面法优化雨花茶茶多酚提取工艺及其化学模式识别研究[J].中国食品添加剂,2023(3):33-41.
[8]他雪峰,许军.超声波辅助绿茶提取物的制备及多壁碳纳米管/绿茶提取物复合体系分散性能研究[J].化工技术与开发,2017,46(2):9-13.
[9]付静,沈小萌,杨晨曦,等.超声波微波协同浸提工艺优化及速溶红茶产品品质分析[J].食品研究与开发,2024,45(16):113-121.
[10]农金梅,叶有明,廖政达,等.大孔树脂纯化茶多酚及其应用性能研究[J].中国食品添加剂,2023(10):60-67.
[11]李晓洁,刘金鑫,李建华,等.大孔吸附树脂纯化茶多酚的工艺优化及抗氧化活性研究[J].食品工业科技,2023,44(13):214-223.
[12]罗琴,贾广成,杨金漆,等.离子液体功能化磁性纳米颗粒的制备及其茶多酚吸附性能研究[J].中国测试,2022,48(9):71-77.
[13]叶鹤琳,邸多隆.一种离子液体修饰的大对脂对茶多酚的吸附机理研究[J].西北师范大学学报(自然科学版),2014,50(4):59-64.
[14]唐课文,周春山,钟世安,等.聚酰胺树脂对茶多酚和咖啡因吸附选择性研究[J].光谱学与光谱分析,2003,23(1):143-145.
[15]杨文泓,赵长青,高杰,等.用大孔氨甲基聚苯乙烯树脂选择性吸附分离茶多酚和咖啡因[J].离子交换与吸附,2007,23(6):481-488.
[16]朱兴一,刘晓平,谢捷,等.竹叶纤维吸附法制备茶多酚的研究[J].浙江工业大学学报,2013,41(6):605-609.
[17]王瑞芳,陈发河,吴光斌,等.利用大孔树脂吸附法分离儿茶素EGCG和咖啡因[J].集美大学学报(自然科学版),2013,18(5):337-341.
[18]高彦华,陈颖.连续中压PVPP柱层析纯化茶多酚及EGCG的研究[J].化工科技,2014,22(3):31-35.
[19]王秀萍,朱海燕,谢苏平.木质纤维素吸附分离法纯化茶多酚研究[J].茶叶学报,2015,56(4):223-231.
[20]龚志华,黄甜,庞月兰,等.HP-20大孔吸附树脂分离纯化儿茶素EGCG的效果[J].湖南农业大学学报(自然科学版),2010,36(1):87-90.
[21]王瑞芳,陈发河,吴光斌,等.茶多酚树脂吸附层析法脱咖啡因的性能研究[J].食品科学,2009,30(20):122-125.
[22]罗志敏,薛丽群,张婷,等.珠状壳聚糖树脂对绿茶中茶多酚的吸附研究[J].食品科学,2009,30(1):86-89.
[23]张文博,陈盛,夏启华,等.胺基化壳聚糖树脂吸附分离茶多酚的研究[J].广州化学,2010,35(1):22-27.
[24]薛丽群,陈盛.壳聚糖-沸石复合膜对茶汤中茶多酚的选择性吸附[J].离子交换与吸附,2020,36(2):125-135.
[25]罗志敏,马秀玲,陈盛,等.磁性壳聚糖-聚丙烯酸微球的制备及表征[J].化学通报,2005(7):551-554.
[26]杨金杯,陈玉成,余美琼,等.001×14.5离子交换树脂对镍(Ⅱ)的吸附[J].环境工程学报,2013,7(8):3019-3024.
[27]郑志功,杨金杯,郭锦超,等.石墨烯的制备及其对铬(Ⅵ)的吸附性能[J].过程工程学报,2017,17(5):1085-1090.
基本信息:
DOI:10.19977/j.cnki.jfpnu.20250023
中图分类号:O647.3;O629
引用信息:
[1]薛丽群,林秀珠,林谦.壳聚糖-聚丙烯酸微球对茶多酚的吸附行为[J].福建技术师范学院学报,2025,43(02):41-48.DOI:10.19977/j.cnki.jfpnu.20250023.
基金信息:
近海流域环境测控治理福建省高校重点实验室开放基金项目(S1-KF2204)