Intensification of microwave energy parameters and main effect analysis of total phenolics recovery from Euphorbia hirta leaf
暂无分享,去创建一个
[1] V. Dragović-Uzelac,et al. Effect of Microwave-Assisted Extraction on Polyphenols Recovery from Tomato Peel Waste. , 2019, Acta chimica Slovenica.
[2] P. Kaur,et al. Simultaneous microwave assisted extraction and HPTLC quantification of mangiferin, amarogentin, and swertiamarin in Swertia species from Western Himalayas , 2019, Industrial Crops and Products.
[3] C. Gan,et al. Microwave-enhanced extraction and mass spectrometry fingerprints of polyphenolic constituents in Sesamum indicum leaves , 2019, Industrial Crops and Products.
[4] W. B. Sediawan,et al. Kinetics of mace (Myristicae arillus) essential oil extraction using microwave assisted hydrodistillation: Effect of microwave power , 2019, Industrial Crops and Products.
[5] Rungsinee Sothornvit,et al. Extraction of phenolic compounds from lime peel waste using ultrasonic-assisted and microwave-assisted extractions , 2019, Food Bioscience.
[6] M. Zhang,et al. Modeling the dehydration and analysis of dielectric properties of ultrasound and microwave combined vacuum frying apple slices , 2019 .
[7] E. L. Dall'Oglio,et al. Measuring dielectric properties for microwave-assisted extraction of essential oils using single-mode and multimode reactors , 2019, RSC advances.
[8] Anabella C. Vilando,et al. Production of green nano zero-valent iron (G-nZVI) particles using polyphenol extracts of Tawa-tawa (Euphorbia hirta linn) leaves and green tea (Camelia sinensis) leaves , 2019, MATEC Web of Conferences.
[9] N. Chin,et al. Effects of simultaneous UV-C radiation and ultrasonic energy postharvest treatment on bioactive compounds and antioxidant activity of tomatoes during storage. , 2019, Food chemistry.
[10] Olalere Olusegun Abayomi,et al. Comparative Analysis of Polyphenolic and Antioxidant Constituents in Dried Seedlings and Seedless Acacia nilotica Fruits , 2018, Journal of Analysis and Testing.
[11] R. Yunus,et al. Synergistic intermittent heating and energy intensification of scale-up parameters in an optimized microwave extraction process , 2018, Chemical Engineering and Processing - Process Intensification.
[12] Liuyang Shen,et al. Effects of Microwave Power on Extraction Kinetic of Anthocyanin from Blueberry Powder considering Absorption of Microwave Energy , 2018 .
[13] P. Thirunavukkarasu,et al. Antioxidant Activity of Euphorbia hirta Linn Leaves Extracts , 2016 .
[14] Saeed Aeenehvand,et al. Evaluation and application of microwave-assisted extraction and dispersive liquid-liquid microextraction followed by high-performance liquid chromatography for the determination of polar heterocyclic aromatic amines in hamburger patties. , 2016, Food chemistry.
[15] M. J. Cocero,et al. Microwave-assisted extraction of polyphenols from Clinacanthus nutans Lindau medicinal plant: Energy perspective and kinetics modeling , 2015 .
[16] Di Geng,et al. Phenols and flavonoids from the aerial part of Euphorbia hirta : Phenols and flavonoids from the aerial part of Euphorbia hirta , 2012 .
[17] Xiao-hua Xiao,et al. Microwave-assisted extraction performed in low temperature and in vacuo for the extraction of labile compounds in food samples. , 2012, Analytica Chimica Acta.
[18] Di Geng,et al. Phenols and flavonoids from the aerial part of Euphorbia hirta. , 2012, Chinese journal of natural medicines.
[19] S. Sasidharan,et al. Antioxidant activity and phytochemical screening of the methanol extracts of Euphorbia hirta L. , 2011, Asian Pacific journal of tropical medicine.
[20] Jale Acar,et al. The use of factorial design for modeling membrane distillation , 2010 .