Designed polar cosolvent-modified Supercritical CO2 removing caffeine from and retaining catechins in green tea powder using response surface methodology

被引:41
作者
Huang, Kuo-Jong
Wu, Jia-Jiuan
Chiu, Yung-Ho
Lai, Cheng-Yung
Chang, Chieh-Ming J.
机构
[1] Natl Chung Hsing Univ, Dept Chem Engn, Taichung 402, Taiwan
[2] China Med Univ, Dept Nutr, Taichung 404, Taiwan
[3] Taiwan Supercrit Technol Co Ltd, Dept Res & Dev, Changhua 502, Taiwan
[4] Chihlee Inst Technol, Banciao, Taiwan
关键词
supercritical carbon dioxide decaffeination; cosolvent addition; caffeine; catechins; extraction; efficiency; concentration factor;
D O I
10.1021/jf071161q
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
This study examines cosolvent-modified supercritical carbon dioxide (SC-CO2) to remove caffeine from and to retain catechins in green tea powder. The response surface method was adopted to determine the optimal operation conditions in terms of the extraction efficiencies and concentration factors of caffeine and catechins during the extractions. When SC-CO2 was used at 333 K and 300 bar, 91.5% of the caffeine was removed and 80.8% of catechins were retained in the tea: 3600 g of carbon dioxide was used in the extraction of 4 g of tea soaked with 1 g of water. Under the same extraction conditions, 10 g of water was added to < 800 g of carbon dioxide in an extraction that completely removed caffeine (that is, the caffeine extraction efficiency was 100%). The optimal result as predicted by three-factor response surface methodology and supported by experimental data was that in 1.5 h of extraction, 640 g of carbon dioxide at 323 K and 275 bar with the addition of 6 g of water extracted 71.9% of the caffeine while leaving 67.8% of the catechins in 8 g of tea. Experimental data indicated that supercritical carbon dioxide decaffeination increased the concentrations of caffeine in the SC-CO2 extracts at 353 K.
引用
收藏
页码:9014 / 9020
页数:7
相关论文
共 25 条
[1]   Inhibition of PhIP mutagenicity by catechins, and by theaflavins and gallate esters [J].
Apostolides, Z ;
Balentine, DA ;
Harbowy, ME ;
Hara, Y ;
Weisburger, JH .
MUTATION RESEARCH-GENETIC TOXICOLOGY AND ENVIRONMENTAL MUTAGENESIS, 1997, 389 (2-3) :167-172
[2]   Determination of tea components with antioxidant activity [J].
Cabrera, C ;
Giménez, R ;
López, MC .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2003, 51 (15) :4427-4435
[3]   Effect of ethanol content on carbon dioxide extraction of polyphenols from tea [J].
Chang, CJ ;
Chiu, KL ;
Chen, YL ;
Yang, PW .
JOURNAL OF FOOD COMPOSITION AND ANALYSIS, 2001, 14 (01) :75-82
[4]  
CHANG LH, 2007, J CHIN INST CHEM ENG, DOI DOI 10.1016/J.JCIECE.2007.03.003
[5]   Hot-pressurized fluid extraction of flavonoids and phenolic acids from Brazilian propolis and their cytotoxic assay in vitro [J].
Chen, Chao-Rui ;
Lee, Ying-Nong ;
Chang, Chieh-Ming J. ;
Lee, Miau-Rong ;
Wei, I-Chien .
JOURNAL OF THE CHINESE INSTITUTE OF CHEMICAL ENGINEERS, 2007, 38 (3-4) :191-196
[6]   Regeneration of supercritical carbon dioxide by membrane at near critical conditions [J].
Chiu, YW ;
Tan, CS .
JOURNAL OF SUPERCRITICAL FLUIDS, 2001, 21 (01) :81-89
[7]   Induction of apoptosis by green tea catechins in human prostate cancer DU145 cells [J].
Chung, LY ;
Cheung, TC ;
Kong, SK ;
Fung, KP ;
Choy, YM ;
Chen, ZY ;
Kwok, TT .
LIFE SCIENCES, 2001, 68 (10) :1207-1214
[8]   Simultaneous analysis of individual catechins and caffeine in green tea [J].
Goto, T ;
Yoshida, Y ;
Kiso, M ;
Nagashima, H .
JOURNAL OF CHROMATOGRAPHY A, 1996, 749 (1-2) :295-299
[9]  
GRAHAM DM, 1978, NUTR REV, V36, P97, DOI 10.1111/j.1753-4887.1978.tb03717.x
[10]  
HURBERTURS K, 1990, Patent No. 4976979