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Modern technologies for extraction of aroma compounds from fruit peels: a review

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References

  • Alfaro, M. J., J. M. R. Bélanger, F. C. Padilla, and J. R. Jocelyn Paré. 2003. Influence of solvent, matrix dielectric properties, and applied power on the liquid-phase microwave-assisted processes (MAP™) extraction of ginger (Zingiber officinale). Food Research International 36 (5):499–504. doi: 10.1016/S0963-9969(02)00198-9.
  • Alissandrakis, E., D. Daferera, P. A. Tarantilis, M. Polissiou, and P. C. Harizanis. 2003. Ultrasound-assisted extraction of volatile compounds from citrus flowers and citrus honey. Food Chemistry 82 (4):575–82. doi: 10.1016/S0308-8146(03)00013-X.
  • Allaf, K., C. Besombes, B. Berka, M. Kristiawan, V. Sobolik, and T. Allaf. 2011. Instant controlled pressure drop technology in plant extraction processes. In Enhancing extraction processes in the food industry, ed. N. Lebovka, E. Vorobiev, and F. Chemat, 255–302. Boca Raton: CRC Press.
  • Allaf, T., and K. Allaf, eds. 2014. Instant controlled pressure drop (D.I.C.) in food processing, food engineering series. New York: Springer.
  • Allaf, T., V. Tomao, C. Besombes, and F. Chemat. 2013. Thermal and mechanical intensification of essential oil extraction from orange peel via instant autovaporization. Chemical Engineering and Processing: Process Intensification 72:24–30. doi: 10.1016/j.cep.2013.06.005.
  • Allaf, T., V. Tomao, K. Ruiz, and F. Chemat. 2013. Instant controlled pressure drop technology and ultrasound assisted extraction for sequential extraction of essential oil and antioxidants. Ultrasonics Sonochemistry 20 (1):239–46. doi: 10.1016/j.ultsonch.2012.05.013.
  • Arthur, C. L., and J. Pawliszyn. 1990. Solid phase microextraction with thermal desorption using fused silica optical fibers. Analytical Chemistry 62 (19):2145–8. doi: 10.1021/ac00218a019.
  • Asbahani, A. E., K. Miladi, W. Badri, M. Sala, E. H. A. Addi, H. Casabianca, A. E. Mousadik, D. Hartmann, A. Jilale, F. N. R. Renaud, et al. 2015. Essential oils: From extraction to encapsulation. International Journal of Pharmaceutics 483 (1-2):220–43. doi: 10.1016/j.ijpharm.2014.12.069.
  • Asikin, Y., I. Taira, S. Inafuku-Teramoto, H. Sumi, H. Ohta, K. Takara, and K. Wada. 2012. The composition of volatile aroma components, flavanones, and polymethoxylated flavones in Shiikuwasha (Citrus depressa Hayata) peels of different cultivation lines. Journal of Agricultural and Food Chemistry 60 (32):7973–80. doi: 10.1021/jf301848s.
  • Assami, K., D. Pingret, S. Chemat, B. Y. Meklati, and F. Chemat. 2012. Ultrasound induced intensification and selective extraction of essential oil from Carum carvi L. seeds. Chemical Engineering and Processing: Process Intensification 62:99–105. doi: 10.1016/j.cep.2012.09.003.
  • Attard, T. M., C. R. McElroy, and A. J. Hunt. 2015. Economic assessment of supercritical CO2 extraction of waxes as part of a maize stover biorefinery. International Journal of Molecular Sciences 16 (8):17546–64. doi: 10.3390/ijms160817546.
  • Atti-Santos, A. C., M. Rossato, L. A. Serafini, E. Cassel, and P. Moyna. 2005. Extraction of essential oils from lime (Citrus latifolia Tanaka) by hydrodistillation and supercritical carbon dioxide. Brazilian Archives of Biology and Technology 48 (1):155–60. doi: 10.1590/S1516-89132005000100020.
  • Aubert, C., and M. Pitrat. 2006. Volatile compounds in the skin and pulp of Queen Anne's pocket melon. Journal of Agricultural and Food Chemistry 54 (21):8177–82. doi: 10.1021/jf061415s.
  • Ayre, A.,. K. Ghude, P. Mane, M. Nemade, S. Gosavi, A. Pathare, and A. Lad. 2013. Supercritical fluid extraction—A green paradigm in the area of separation science. Asian Journal of Biomedical and Pharmaceutical Sciences 3 (23):1–7.
  • Aziz, Z. A., A. Ahmad, S. H. M. Setapar, A. Karakucuk, M. M. Azim, D. Lokhat, M. Rafatullah, M. Ganash, M. A. Kamal, and G. M. Ashraf. 2018. Essential oils: Extraction techniques, pharmaceutical and therapeutic potential - A review. Current Drug Metabolism 19 (13):1100–10. doi: 10.2174/1389200219666180723144850.
  • Baltussen, E., P. Sandra, F. David, and C. Cramers. 1999. Stir bar sorptive extraction (SBSE), a novel extraction technique for aqueous samples: Theory and principles. Journal of Microcolumn Separations 11 (10):737–47. doi: 10.1002/(SICI)1520-667X(1999)11:10 < 737::AID-MCS7 > 3.0.CO;2-4.
  • Bernardo-Gil, M. G. 2013. Engineering aspects of food biotechnology. In Contemporary food engineering, ed. J. A. Teixeira and A. A. Vicente, 215–35. Boca Raton: CRC Press.
  • Bodake, H., K. Panicker, V. Kailaje, and K. Rao. 2002. Chemopreventive effect of orange oil on the development of hepatic preneoplastic lesions induced by N-nitrosodiethylamine in rats: An ultrastructural study. Indian Journal of Experimental Biology 40 (3):245–51.
  • Bustamante, J., S. Van Stempvoort, M. García-Gallarreta, J. A. Houghton, H. K. Briers, V. L. Budarin, A. S. Matharu, and J. H. Clark. 2016. Microwave assisted hydro-distillation of essential oils from wet citrus peel waste. Journal of Cleaner Production 137:598–605. doi: 10.1016/j.jclepro.2016.07.108.
  • Cabaroglu, T., A. Canbas, R. Baumes, C. Bayonove, J. Lepoutre, and Z. Günata. 1997. Aroma composition of a white wine of Vitis vinifera L. cv. Emir as affected by skin contact. Journal of Food Science 62 (4):680–3. doi: 10.1111/j.1365-2621.1997.tb15434.x.
  • Camino-Sánchez, F. J., R. Rodríguez-Gómez, A. Zafra-Gómez, A. Santos-Fandila, and J. L. Vílchez. 2014. Stir bar sorptive extraction: Recent applications, limitations and future trends. Talanta 130:388–99. doi: 10.1016/j.talanta.2014.07.022.
  • Capuzzo, A., M. E. Maffei, and A. Occhipinti. 2013. Supercritical fluid extraction of plant flavors and fragrances. Molecules (Basel, Switzerland) 18 (6):7194–238. doi: 10.3390/molecules18067194.
  • Chan, C.-H., R. Yusoff, G.-C. Ngoh, and F. W.-L. Kung. 2011. Microwave-assisted extractions of active ingredients from plants. Journal of Chromatography. A 1218 (37):6213–25. doi: 10.1016/j.chroma.2011.07.040.
  • Chang, S. Y. 2008. [Effects of aroma hand massage on pain, state anxiety and depression in hospice patients with terminal cancer]. Taehan Kanho Hakhoe Chi 38 (4):493–502. doi: 10.4040/jkan.2008.38.4.493.
  • Chemat, F., M. Abert-Vian, and X. Fernandez. 2013. Microwave-assisted extraction of essential oils and aromas. In Microwave-assisted extraction for bioactive compounds: Theory and practice, ed. F. Chemat and G. Cravotto, 53. Boston: Springer.
  • Chemat, F., N. Rombaut, A. Meullemiestre, M. Turk, S. Perino, A.-S. Fabiano-Tixier, and M. Abert-Vian. 2017. Review of green food processing techniques. Preservation, transformation, and extraction. Innovative Food Science & Emerging Technologies 41:357–77. doi: 10.1016/j.ifset.2017.04.016.
  • Chemat, F., H. Zill e, and M. K. Khan. 2011. Applications of ultrasound in food technology: Processing, preservation and extraction. Ultrasonics Sonochemistry 18 (4):813–35. doi: 10.1016/j.ultsonch.2010.11.023.
  • Chen, Q., Z. Hu, F. Y.-D. Yao, and H. Liang. 2016. Study of two-stage microwave extraction of essential oil and pectin from pomelo peels. LWT-Food Science Technology 66:538–45. doi: 10.1016/j.lwt.2015.11.019.
  • Chienthavorn, O., and W. Insuan. 2004. Superheated water extraction of lime peel: A comparison with conventional methods. Analytical Letters 37 (11):2393–409. doi: 10.1081/AL-200028189.
  • Choi, W. S., S. Singh, and Y. S. Lee. 2016. Characterization of edible film containing essential oils in hydroxypropyl methylcellulose and its effect on quality attributes of ‘Formosa’plum (Prunus salicina L.). LWT 70:213–22. doi: 10.1016/j.lwt.2016.02.036.
  • Craveiro, A. A., F. J. A. Matos, J. W. Alencar, and M. M. Plumel. 1989. Microwave oven extraction of an essential oil. Flavour and Fragrance Journal 4 (1):43–4. doi: 10.1002/ffj.2730040110.
  • Cravotto, G., L. Boffa, S. Mantegna, P. Perego, M. Avogadro, and P. Cintas. 2008. Improved extraction of vegetable oils under high-intensity ultrasound and/or microwaves. Ultrasonics Sonochemistry 15 (5):898–902. doi: 10.1016/j.ultsonch.2007.10.009.
  • Crisosto, C. H., G. Crisosto, and F. Neri. 2006. Understanding tree fruit quality based on consumer acceptance. Acta Horticulturae 712:183–90.
  • Danlami, J. M., A. Arsad, M. A. A. Zaini, and H. Sulaiman. 2014. A comparative study of various oil extraction techniques from plants. Reviews in Chemical Engineering 30 (6):605–26. doi: 10.1515/revce-2013-0038.
  • David, F., and P. Sandra. 2007. Stir bar sorptive extraction for trace analysis. Journal of Chromatography. A 1152 (1-2):54–69. doi: 10.1016/j.chroma.2007.01.032.
  • de Castro, M. D. L., and M. A. Fernández-Peralbo. 2013. The role of microwaves in omics disciplines. In Microwave-assisted extraction for bioactive compounds: Theory and practice, ed. F. Chemat and G. Cravotto, 127–80. Boston: Springer.
  • Defilippi, B. G., A. M. Dandekar, and A. A. Kader. 2005. Relationship of ethylene biosynthesis to volatile production, related enzymes, and precursor availability in apple peel and flesh tissues. Journal of Agricultural and Food Chemistry 53 (8):3133–41. doi: 10.1021/jf047892x.
  • El-Hawary, S. S., and M. A. Rabeh. 2014. Mangifera indica peels: A common waste product with impressive immunostimulant, anticancer and antimicrobial potency. Journal of Natural Sciences Research 4 (3):102–15.
  • Esmaeili, A., S. Abednazari, Y. M. Abdollahzade, N. M. Abdollahzadeh, R. Mahjoubian, and M. Tabatabaei-Anaraki. 2012. Peel volatile compounds of apple (Malus domestica) and grapefruit (Citrus paradisi). Journal of Essential Oil Bearing Plants 15 (5):794–9. doi: 10.1080/0972060X.2012.10644122.
  • Ezejiofor, T., N. Eke, R. Okechukwu, R. Nwoguikpe, and C. Duru. 2011. Waste to wealth: Industrial raw materials potential of peels of Nigerian sweet orange (Citrus sinensis). African Journal of Biotechnology 10 (33):6257–64.
  • Ferhat, M. A., B. Y. Meklati, and F. Chemat. 2007. Comparison of different isolation methods of essential oil from Citrus fruits: Cold pressing, hydrodistillation and microwave ‘dry’ distillation. Flavour and Fragrance Journal 22 (6):494–504. doi: 10.1002/ffj.1829.
  • Ferreira, L., R. Perestrelo, M. Caldeira, and J. S. Câmara. 2009. Characterization of volatile substances in apples from Rosaceae family by headspace solid-phase microextraction followed by GC-qMS . Journal of Separation Science 32 (11):1875–88. doi: 10.1002/jssc.200900024.
  • Fisher, K., and C. A. Phillips. 2006. The effect of lemon, orange and bergamot essential oils and their components on the survival of Campylobacter jejuni, Escherichia coli O157, Listeria monocytogenes, Bacillus cereus and Staphylococcus aureus in vitro and in food systems. Journal of Applied Microbiology 101 (6):1232–40. doi: 10.1111/j.1365-2672.2006.03035.x.
  • Food and Drug Administration. 2016. Code of federal regulations (CFR). Title 21: Food and drugs. ChapterI- food and drug administration, department of health and human services, subchapter B - food for human consumption (continued), Part 182 - substances generally recognized as safe (GRAS), subpart a - general provisions, subpart 182.20 - essential oils, oleoresins, and natural extractives. Accessed April 15, 2020. https://www.accessdata.fda.gov/scripts/cdrh/cfdocs/cfcfr/CFRSearch.cfm?fr%C2%BC182.20.
  • Ganzler, K., A. Salgó, and K. Valkó. 1986. Microwave extraction: A novel sample preparation method for chromatography. Journal of Chromatography A 371:299–306. doi: 10.1016/S0021-9673(01)94714-4.
  • Gbashi, S., O. A. Adebo, L. Piater, N. E. Madala, and P. B. Njobeh. 2017. Subcritical water extraction of biological materials. Separation & Purification Reviews 46 (1):21–34. doi: 10.1080/15422119.2016.1170035.
  • Genovese, A., S. A. Lamorte, A. Gambuti, and L. Moio. 2013. Aroma of Aglianico and Uva di Troia grapes by aromatic series. Food Research International 53 (1):15–23. doi: 10.1016/j.foodres.2013.03.051.
  • Gertenbach, D. 2002. Solid-liquid extraction technologies for manufacturing nutraceuticals. In Functional foods: Biochemical and processing aspects, ed. J. Shi, G. Mazza, and M. Le Maguer, 331–66. Boca Raton: CRC Press.
  • Gilbert, J. M., H. Young, R. D. Ball, and S. H. Murray. 1996. Volatile flavor compounds affecting consumer acceptability of kiwifruit. Journal of Sensory Studies 11 (3):247–59. doi: 10.1111/j.1745-459X.1996.tb00044.x.
  • Golmakani, M.-T., and M. Moayyedi. 2015. Comparison of heat and mass transfer of different microwave-assisted extraction methods of essential oil from Citrus limon (Lisbon variety) peel. Food Science & Nutrition 3 (6):506–18. doi: 10.1002/fsn3.240.
  • Gomes, B. L., J. P. Fabi, and E. Purgatto. 2016. Cold storage affects the volatile profile and expression of a putative linalool synthase of papaya fruit. Food Research International (Ottawa, Ont.) 89 (Pt 1):654–60. doi: 10.1016/j.foodres.2016.09.025.
  • Guan, W., S. Li, R. Yan, S. Tang, and C. Quan. 2007. Comparison of essential oils of clove buds extracted with supercritical carbon dioxide and other three traditional extraction methods. Food Chemistry 101 (4):1558–64. doi: 10.1016/j.foodchem.2006.04.009.
  • Hadi, M., F.-J. Zhang, F.-F. Wu, C. Zhou, and J. Tao. 2013. Advances in fruit aroma volatile research. Molecules (Basel, Switzerland) 18:8200–29.
  • Hao, J.-Y., W. Han, S.-D. Huang, B.-Y. Xue, and X. Deng. 2002. Microwave-assisted extraction of artemisinin from Artemisia annua L. Separation and Purification Technology 28 (3):191–6. doi: 10.1016/S1383-5866(02)00043-6.
  • Hilali, S., A.-S. Fabiano-Tixier, K. Ruiz, A. Hejjaj, F. Ait Nouh, A. Idlimam, A. Bily, L. Mandi, and F. Chemat. 2019. Green extraction of essential oils, polyphenols, and pectins from orange peel employing solar energy: Toward a zero-waste biorefinery. ACS Sustainable Chemistry & Engineering 7 (13):11815–22. doi: 10.1021/acssuschemeng.9b02281.
  • Ho, C. H., J. Piotrowski, S. J. Dixon, A. Baryshnikova, M. Costanzo, and C. Boone. 2011. Combining functional genomics and chemical biology to identify targets of bioactive compounds. Current Opinion in Chemical Biology 15 (1):66–78. doi: 10.1016/j.cbpa.2010.10.023.
  • Huang, S., G. Chen, N. Ye, X. Kou, F. Zhu, J. Shen, and G. Ouyang. 2019. Solid-phase microextraction: An appealing alternative for the determination of endogenous substances - A review. Analytica Chimica Acta 1077:67–86. doi: 10.1016/j.aca.2019.05.054.
  • Huang, X.-W., Y.-C. Feng, Y. Huang, and H.-L. Li. 2013. Potential cosmetic application of essential oil extracted from Litsea cubeba fruits from, China. Journal of Essential Oil Research 25 (2):112–9. doi: 10.1080/10412905.2012.755479.
  • Hung, S.-F., S.-F. Roan, T.-L. Chang, H.-B. King, and I.-Z. Chen. 2016. Analysis of aroma compounds and nutrient contents of mabolo (Diospyros blancoi A. DC.), an ethnobotanical fruit of Austronesian Taiwan. Journal of Food and Drug Analysis 24 (1):83–9. doi: 10.1016/j.jfda.2015.08.004.
  • International Organization for Standardization (ISO 9235). 2013. Aromatic natural raw materials-vocabulary. Accessed April 20, 2020. https://www.sis.se/api/document/preview/916842.
  • Jalili, V., A. Barkhordari, and A. Ghiasvand. 2020. A comprehensive look at solid-phase microextraction technique: A review of reviews. Microchemical Journal 152:104319. doi: 10.1016/j.microc.2019.104319.
  • Kamal, A. M., M. E. El-Tantawy, E. G. Haggag, M. H. Shukr, A. M. G. El-Garhy, and R. M. Lithy. 2019. Chemical and biological analysis of essential oils and pectins of banana, cantaloupe peels, guava pulp and formulation of banana pectin gel. Journal of Pharmacognosy and Phytochemistry 8 (4):1808–16.
  • Chandrakant, K., K. J. Dere Pravin, S. Dhonde, S. Honde Bharat, and P. K. Amol. 2011. An overview on supercritical fluid extraction for herbal drugs. Pharmacologyonline 2:575–96.
  • Kaufmann, B., and P. Christen. 2002. Recent extraction techniques for natural products: microwave-assisted extraction and pressurised solvent extraction . Phytochemical Analysis: PCA 13 (2):105–13. doi: 10.1002/pca.631.
  • Khan, M. F., and A. K. Dwivedi. 2018. A review on techniques available for the extraction of essential oils from various plants. International Research Journal of Engineering Technology 5 (5):5–8.
  • Kharlamova, Т. V., and К. D. Praliyev. 2018. Microwave radiation, its influence on solutions and use for extraction of components of plant material. 1-st Report. The systems of microwave-assisted extraction and their application for extraction of natural compounds. Chemical Journal of Kazakhstan 4:76–98.
  • Knez, Ž., M. Škerget, and M. KnezHrnčič. 2010. 1 - Principles of supercritical fluid extraction and applications in the food, beverage and nutraceutical industries. In Separation, extraction and concentration processes in the food, beverage and nutraceutical industries, ed. S. S. H. Rizvi, 3–38. Cambridge, UK: Woodhead Publishing.
  • Koroch, A. R., H. R. Juliani, and J. A. Zygadlo. 2007. Bioactivity of essential oils and their components. In Flavours and Fragrances: Chemistry, Bioprocessing and Sustainability, ed. R. G. Berger, 87–115. Berlin: Springer.
  • Kubeczka, K.-H. 2010. History and sources of essential oil research. In Handbook of essential oils: Science, technology and applications, ed. K. H. C. Bas¸er and G. Buchbauer, 3–10. Boca Raton: CRC Press.
  • Lalel, H. J., Z. Singh, and S. C. Tan. 2003. Glycosidically-bound aroma volatile compounds in the skin and pulp of ‘Kensington Pride’ mango fruit at different stages of maturity. Postharvest Biology Technology 29 (2):205–18. doi: 10.1016/S0925-5214(02)00250-8.
  • Laohaprasit, N., R. K. Kukreja, and A. Arunrat. 2012. Extraction of volatile compounds from 'Nam Dok Mai' and 'Maha Chanok' mangoes. International Food Research Journal 19 (4):1445–8.
  • Latha, C. 2007. Microwave-assisted extraction of embelin from Embelia ribes. Biotechnology Letters 29 (2):319–22. doi: 10.1007/s10529-006-9243-z.
  • Li, H., L. Pordesimo, and J. Weiss. 2004. High intensity ultrasound-assisted extraction of oil from soybeans. Food Research International 37 (7):731–8. doi: 10.1016/j.foodres.2004.02.016.
  • Li, Y., A.-S. Fabiano-Tixier, and F. Chemat. 2014. Essential oils as reagents in green chemistry. Avignon: Springer.
  • Li, Y., H. Y. Qi, Y. F. Liu, X. C. Guan, and Y. F. Liu. 2011. Effects of ethephon and 1-methylcyclopropene on fruit ripening and the biosynthesis of volatiles in oriental sweet melon (Cucumis melo var. makuwa Makino). The Journal of Horticultural Science and Biotechnology 86 (5):517–26. doi: 10.1080/14620316.2011.11512798.
  • Li, Y., M. Radoiu, A.-S. Fabiano-Tixier, and F. Chemat. 2013. From laboratory to industry: Scale-up, quality, and safety consideration for microwave-assisted extraction. In Microwave-assisted extraction for bioactive compounds: Theory and practice, ed. F. Chemat and G. Cravott, 207–29. Boston: Springer.
  • Li, Z., K. Howell, Z. Fang, and P. Zhang. 2020. Sesquiterpenes in grapes and wines: Occurrence, biosynthesis, functionality, and influence of winemaking processes. Comprehensive Reviews in Food Science and Food Safety 19 (1):247–81. doi: 10.1111/1541-4337.12516.
  • Likens, S. T., and G. B. Nickerson. 1964. Detection of certain hop oil constituents in brewing products. Proceedings of American Society of Brewing Chemists 22 (1):5–13. doi: 10.1080/00960845.1964.12006730.
  • Liu, J., X.-L. Zhu, N. Ullah, and Y.-S. Tao. 2017. Aroma glycosides in grapes and wine. Journal of Food Science 82 (2):248–59. doi: 10.1111/1750-3841.13598.
  • Liu, W. W., H. Y. Qi, B. H. Xu, Y. Li, X. B. Tian, Y. Y. Jiang, X. F. Xu, and D. Q. Lv. 2012. Ethanol treatment inhibits internal ethylene concentrations and enhances ethyl ester production during storage of oriental sweet melons (Cucumis melo var. makuwa Makino). Postharvest Biology and Technology 67:75–83. doi: 10.1016/j.postharvbio.2011.12.015.
  • Lubinska-Szczygeł, M., A. Różańska, T. Dymerski, J. Namieśnik, E. Katrich, and S. Gorinstein. 2018. A novel analytical approach in the assessment of unprocessed Kaffir lime peel and pulp as potential raw materials for cosmetic applications. Industrial Crops and Products 120:313–21. doi: 10.1016/j.indcrop.2018.04.036.
  • Lucchesi, M. E., F. Chemat, and J. Smadja. 2004a. An original solvent free microwave extraction of essential oils from spices. Flavour and Fragrance Journal 19 (2):134–8. doi: 10.1002/ffj.1274.
  • Lucchesi, M. E., F. Chemat, and J. Smadja. 2004b. Solvent-free microwave extraction of essential oil from aromatic herbs: Comparison with conventional hydro-distillation. Journal of Chromatography. A 1043 (2):323–7. doi: 10.1016/j.chroma.2004.05.083.
  • Luo, J., J. Brotchie, M. Pang, P. J. Marriott, K. Howell, and P. Zhang. 2019. Dataset of concentrations of free terpenes at different phenological stages in Vitis vinifera L. Shiraz, Cabernet Sauvignon, Riesling, Chardonnay and Pinot Gris. Data in Brief 27:104595. doi: 10.1016/j.dib.2019.104595.
  • Luo, J., J. Brotchie, M. Pang, P. J. Marriott, K. Howell, and P. Zhang. 2019. Free terpene evolution during the berry maturation of five Vitis vinifera L. cultivars. Food Chemistry 299:125101. doi: 10.1016/j.foodchem.2019.125101.
  • Luque-Garcı́a, J. L., and M. D. Luque de Castro. 2003. Ultrasound: A powerful tool for leaching. Trends in Analytical Chemistry 22 (1):41–7. doi: 10.1016/S0165-9936(03)00102-X.[
  • Madrera, R. R., and B. S. Valles. 2011. Determination of volatile compounds in apple pomace by stir bar sorptive extraction and gas chromatography-mass spectrometry (SBSE-GC-MS) . Journal of Food Science 76 (9):C1326–C1334. doi: 10.1111/j.1750-3841.2011.02406.x.
  • Mandal, V., Y. Mohan, and S. Hemalatha. 2007. Microwave assisted extraction—An innovative and promising extraction tool for medicinal plant research. Pharmacognosy Reviews 1 (1):7–18.
  • Manjare, S. D., and K. Dhingra. 2019. Supercritical fluids in separation and purification: A review. Materials Science for Energy Technologies 2 (3):463–84. doi: 10.1016/j.mset.2019.04.005.
  • Manosroi, A., and J. Manosroi. 2005. Free radical scavenging and tyrosinase inhibition activity of aromatic volatile oil from Thai medicinal plants for cosmetic uses. Acta Horticulturae 680 (680):97–100. doi: 10.17660/ActaHortic.2005.680.13.
  • Masoud, M., and E. El-Hadidy. 2017. Mango, orange and mandarin peels oleoresins to prepare natural and healthy instant flavor drinks. Suez Canal University Journal of Food Sciences 4 (1):11–8. doi: 10.21608/scuj.2017.6653.
  • Matsuura, R., H. Ukeda, and M. Sawamura. 2006. Tyrosinase inhibitory activity of citrus essential oils. Journal of Agricultural and Food Chemistry 54 (6):2309–13. doi: 10.1021/jf051682i.
  • Mejri, J., A. Aydi, M. Abderrabba, and M. Mejri. 2018. Emerging extraction processes of essential oils: A review. Asian Journal of Green Chemistry 2 (3):246–67.
  • Merkle, S., K. K. Kleeberg, and J. Fritsche. 2015. Recent developments and applications of solid phase microextraction (SPME) in food and environmental analysis—A review. Chromatography 2 (3):293–381. doi: 10.3390/chromatography2030293.
  • Mira, B., M. Blasco, A. Berna, and S. Subirats. 1999. Supercritical CO2 extraction of essential oil from orange peel. Effect of operation conditions on the extract composition. The Journal of Supercritical Fluids 14 (2):95–104. doi: 10.1016/S0896-8446(98)00111-9.
  • Munafo, J. P., J. Didzbalis, R. J. Schnell, P. Schieberle, and M. Steinhaus. 2014. Characterization of the major aroma-active compounds in mango (Mangifera indica L.) cultivars Haden, White Alfonso, Praya Sowoy, Royal Special, and Malindi by application of a comparative aroma extract dilution analysis. Journal of Agricultural and Food Chemistry 62 (20):4544–51. doi: 10.1021/jf5008743.
  • Muñoz-González, C., J. J. Rodríguez-Bencomo, P. J. Martín-Álvarez, M. V. Moreno-Arribas, and M. Á. Pozo-Bayón. 2014. Recovery of aromatic aglycones from grape pomace winemaking by-products by using liquid-liquid and pressurized-liquid extraction. Food Analytical Methods 7 (1):47–57. doi: 10.1007/s12161-013-9597-5.
  • Mustafa, A., and C. Turner. 2011. Pressurized liquid extraction as a green approach in food and herbal plants extraction: A review. Analytica Chimica Acta 703 (1):8–18. doi: 10.1016/j.aca.2011.07.018.
  • Nahar, L., and S. D. Sarkar. 2005. Supercritical fluid extraction. In National Products Isolation, ed. S. D. Sarker, Z. Latif, and A.I. Gray, 44–77. Totowa: Humana Press.
  • Nielsen Company. 2015. Global health and wellness report around the world. Accessed April 20, 2020. https://www.nielsen.com/wp-content/uploads/sites/3/2019/04/Nielsen20Global20Health20and20Wellness20Report20-20January202015-1.pdf.
  • Ochiai, N., K. Sasamoto, F. David, and P. Sandra. 2018. Recent developments of stir bar sorptive extraction for food applications: Extension to polar solutes. Journal of Agricultural and Food Chemistry 66 (28):7249–55. doi: 10.1021/acs.jafc.8b02182.
  • Odeh, F., R. A. Abdulkader, S. M. Alnori, and E. Chaty. 2012. The cytotoxic effect of essential oils Citrus aurantium peels on human colorectal carcinoma cell line (Lim1863). Journal of Microbiology Biotechnology Food Sciences 1 (6):1476–87.
  • Omar, J., I. Alonso, A. Garaikoetxea, and N. Etxebarria. 2013. Optimization of focused ultrasound extraction (FUSE) and supercritical fluid extraction (SFE) of citrus peel volatile oils and antioxidants. Food Analytical Methods 6 (4):1244–52. doi: 10.1007/s12161-012-9536-x.
  • Palazzolo, E., V. A. Laudicina, and M. A. Germanà. 2013. Current and potential use of citrus essential oils. Current Organic Chemistry 17 (24):3042–9. doi: 10.2174/13852728113179990122.
  • Paré, J. J., M. Sigouin, and J. Lapointe. 1991. Microwave-assisted natural products extraction. US Patent 5,002,784, filed May 7, 1990, and issued March 26, 1991.
  • Parker, M., A. Barker, C. A. Black, J. Hixson, P. Williamson, and I. L. Francis. 2019. Don't miss the marc: Phenolic-free glycosides from white grape marc increase flavour of wine. Australian Journal of Grape and Wine Research 25 (2):212–23. doi: 10.1111/ajgw.12390.
  • Pejin, B., D. Nakarada, M. Novakovic, V. Tesevic, A. Savic, K. Radotic, and M. Mojovic. 2014. Antioxidant volatiles of the freshwater bryozoan Hyalinella punctata. Natural Product Research 28 (18):1471–5. doi: 10.1080/14786419.2014.905565.
  • Pejin, B., L. Vujisic, M. Sabovljevic, V. Tesevic, and V. Vajs. 2011. Preliminary data on essential oil composition of the moss Rhodobryum ontariense (Kindb.) Kindb. Cryptogamie, Bryologie 32 (2):113–7. doi: 10.7872/cryb.v32.iss1.2011.113.
  • Perdones, Á., I. Escriche, A. Chiralt, and M. Vargas. 2016. Effect of chitosan-lemon essential oil coatings on volatile profile of strawberries during storage. Food Chemistry 197 (Pt A):979–86. doi: 10.1016/j.foodchem.2015.11.054.
  • Perestrelo, R., A. S. Barros, S. M. Rocha, and J. S. Câmara. 2011. Optimisation of solid-phase microextraction combined with gas chromatography-mass spectrometry based methodology to establish the global volatile signature in pulp and skin of Vitis vinifera L. grape varieties. Talanta 85 (3):1483–93. doi: 10.1016/j.talanta.2011.06.025.
  • Périno-Issartier, S., H. Zill e, M. Abert-Vian, and F. Chemat. 2011. Solvent free microwave-assisted extraction of antioxidants from sea buckthorn (Hippophae rhamnoides) food by-products. Food and Bioprocess Technology 4 (6):1020–8. doi: 10.1007/s11947-010-0438-x.
  • Pingret, D., A.-S. Fabiano-Tixier, and F. Chemat. 2013. Degradation during application of ultrasound in food processing: A review. Food Control 31 (2):593–606. doi: 10.1016/j.foodcont.2012.11.039.
  • Popp, P.,. C. Bauer, and L. Wennrich. 2001. Application of stir bar sorptive extraction in combination with column liquid chromatography for the determination of polycyclic aromatic hydrocarbons in water samples. Analytica Chimica Acta 436 (1):1–9. doi: 10.1016/S0003-2670(01)00895-9.
  • Preedy, V. R. 2015. Essential oils in food preservation, flavor and safety. San Diego: Academic Press.
  • Rahman, N., M. B. Uddin, M. F. B. Quader, and M. A. Bakar. 2020. Optimization of mixed peels from banana, carrot and apple to develop high fiber biscuit. International Journal of Natural and Social Sciences 7 (1):21–5.
  • Rassem, H. H., A. H. Nour, and R. M. Yunus. 2016. Techniques for extraction of essential oils from plants: A review. Australian Journal of Basic Applied Sciences 10 (16):117–27.
  • Razzaghi, S. E., A. Arabhosseini, M. Turk, T. Soubrat, A. Cendres, M. H. Kianmehr, S. Perino, and F. Chemat. 2019. Operational efficiencies of six microwave based extraction methods for orange peel oil. Journal of Food Engineering 241:26–32. doi: 10.1016/j.jfoodeng.2018.07.018.
  • Reyes-Jurado, F., A. Franco-Vega, N. Ramírez-Corona, E. Palou, and A. López-Malo. 2015. Essential oils: Antimicrobial activities, extraction methods, and their modeling. Food Engineering Reviews 7 (3):275–97. doi: 10.1007/s12393-014-9099-2.
  • Rezzoug, S. A., C. Boutekedjiret, and K. Allaf. 2005. Optimization of operating conditions of rosemary essential oil extraction by a fast controlled pressure drop process using response surface methodology. Journal of Food Engineering 71 (1):9–17. doi: 10.1016/j.jfoodeng.2004.10.044.
  • Ribeiro-Santos, R.,. M. Andrade, N. R. D. Melo, and A. Sanches-Silva. 2017. Use of essential oils in active food packaging: Recent advances and future trends. Trends in Food Science & Technology 61:132–40. doi: 10.1016/j.tifs.2016.11.021.
  • Richter, B. E., B. A. Jones, J. L. Ezzell, N. L. Porter, N. Avdalovic, and C. Pohl. 1996. Accelerated solvent extraction: A technique for sample preparation. Analytical Chemistry 68 (6):1033–9. doi: 10.1021/ac9508199.
  • Rizvi, S. S. H. 1998. Supercritical fluid processing of food and biomaterials. New York: Blackie Academic and Professional.
  • Rodríguez Madrera, R., R. P. Bedriñana, and B. S. Valles. 2015. Production and characterization of aroma compounds from apple pomace by solid-state fermentation with selected yeasts. LWT - Food Science and Technology 64 (2):1342–53. doi: 10.1016/j.lwt.2015.07.056.
  • Routray, W., and V. Orsat. 2012. Microwave-assisted extraction of flavonoids: A review. Food and Bioprocess Technology 5 (2):409–24. doi: 10.1007/s11947-011-0573-z.
  • Ruiz, C., C. Ramírez, C. G. Piñeres, M. Ángulo, and G. Hedreira. 2011. Obtaining and characterization of mango peel powder and its use as a source of fiber and a functional ingredient in natural yogurt. International Congress on Engineering and Food. Food Process Engineering in a Changing World 22–26.
  • Sánchez-Camargo, A. D. P., F. Parada-Alonso, E. Ibáñez, and A. Cifuentes. 2019. Recent applications of on-line supercritical fluid extraction coupled to advanced analytical techniques for compounds extraction and identification. Journal of Separation Science 42 (1):243–57. doi: 10.1002/jssc.201800729.
  • Sánchez-Palomo, E., M. C. Diaz-Maroto, and M. S. Perez-Coello. 2005. Rapid determination of volatile compounds in grapes by HS-SPME coupled with GC-MS. Talanta 66 (5):1152–7. doi: 10.1016/j.talanta.2005.01.015.
  • Schwab, W., T. C. Fischer, A. Giri, and M. Wüst. 2015. Potential applications of glucosyltransferases in terpene glucoside production: Impacts on the use of aroma and fragrance. Applied Microbiology and Biotechnology 99 (1):165–74. doi: 10.1007/s00253-014-6229-y.
  • Shah, M. V., and M. C. Rohit. 2013. Novel techniques for isolation and extraction of phyto-constituents from herbal plants. American Journal of Phytomedicine and Clinical Therapeutics 1 (3):338–50.
  • Sicari, V., and M. Poiana. 2017. Comparison of the volatile component of the essential oil of kumquat (Fortunella margarita swingle) extracted by supercritical carbon dioxide, hydrodistillation and conventional solvent extraction. Journal of Essential Oil Bearing Plants 20 (1):87–94. doi: 10.1080/0972060X.2017.1282841.
  • Slegers, A., P. Angers, É. Ouellet, T. Truchon, and K. Pedneault. 2015. Volatile compounds from grape skin, juice and wine from five interspecific hybrid grape cultivars grown in Québec (Canada) for wine production. Molecules (Basel, Switzerland) 20 (6):10980–1016. doi: 10.3390/molecules200610980.
  • Sodeifian, G., J. Azizi, and S. Ghoreishi. 2014. Response surface optimization of Smyrnium cordifolium Boiss (SCB) oil extraction via supercritical carbon dioxide. The Journal of Supercritical Fluids 95:1–7. doi: 10.1016/j.supflu.2014.07.023.
  • Soto, M. L., M. Parada, E. Falqué, and H. Domínguez. 2018. Personal-care products formulated with natural antioxidant extracts. Cosmetics 5 (1):13. doi: 10.3390/cosmetics5010013.
  • Soxhlet, F. 1879. Die gewichtsanalytische bestimmung des milchfettes. Dingler's Polytechnisches Journal 232:461–5.
  • Stashenko, E. E., B. E. Jaramillo, and J. R. Martínez. 2004. Analysis of volatile secondary metabolites from Colombian Xylopia aromatica (Lamarck) by different extraction and headspace methods and gas chromatography. Journal of Chromatography A 1025 (1):105–13. doi: 10.1016/j.chroma.2003.10.059.
  • Suetsugu, T., M. Tanaka, H. Iwai, T. Matsubara, Y. Kawamoto, C. Saito, Y. Sasaki, M. Hoshino, A. T. Quitain, M. Sasaki, et al. 2013. Supercritical CO2 extraction of essential oil from Kabosu (Citrus sphaerocarpa Tanaka) peel. Flavour 2 (1):18. doi: 10.1186/2044-7248-2-18.
  • Sun, H., H. Ni, Y. Yang, F. Chen, H. Cai, and A. Xiao. 2014. Sensory evaluation and gas chromatography–mass spectrometry (GC-MS) analysis of the volatile extracts of pummelo (Citrus maxima) peel. Flavour and Fragrance Journal 29 (5):305–12. doi: 10.1002/ffj.3206.
  • Tamura, H., S. Boonbumrung, T. Yoshizawa, and W. Varanyanond. 2001. The volatile constituents in the peel and pulp of a green Thai mango, Khieo Sawoei cultivar (Mangifera indica L.). Food Science and Technology Research 7 (1):72–7. doi: 10.3136/fstr.7.72.
  • TGSC. 2020. The Good Scents Company Information System. Accessed April 20, 2020. http://www.thegoodscentscompany.com.
  • Toma, M., M. Vinatoru, L. Paniwnyk, and T. J. Mason. 2001. Investigation of the effects of ultrasound on vegetal tissues during solvent extraction. Ultrasonics Sonochemistry 8 (2):137–42. doi: 10.1016/S1350-4177(00)00033-X.
  • Tongnuanchan, P., and S. Benjakul. 2014. Essential oils: Extraction, bioactivities, and their uses for food preservation. Journal of Food Science 79 (7):R1231–R1249. doi: 10.1111/1750-3841.12492.
  • Tonthubthimthong, P., S. Chuaprasert, P. Douglas, and W. Luewisutthichat. 2001. Supercritical CO2 extraction of nimbin from neem seeds – An experimental study. Journal of Food Engineering 47 (4):289–93. doi: 10.1016/S0260-8774(00)00131-X.
  • Uysal, B., F. Sozmen, O. Aktas, B. S. Oksal, and E. O. Kose. 2011. Essential oil composition and antibacterial activity of the grapefruit (Citrus Paradisi. L) peel essential oils obtained by solvent-free microwave extraction: Comparison with hydrodistillation. International Journal of Food Science & Technology 46 (7):1455–61. doi: 10.1111/j.1365-2621.2011.02640.x.
  • Veggi, P. C., J. Martinez, and M. A. A. Meireles. 2013. Fundamentals of microwave extraction. In Microwave-assisted extraction for bioactive compounds: theory and practice, ed. F. Chemat and G. Cravott, 15. Boston: Springer.
  • Verma, D. K., D. K. Mahato, and P. P. Srivastav. 2018. Simultaneous distillation extraction (SDE): A traditional method for extraction of aroma chemicals in rice. In Science and Technology of Aroma, Flavor, and Fragrance in Rice, ed. D. K. Verma and P. P. Srivastav, 99–108. Oakville: Apple Academic Press.
  • Vilkhu, K., R. Mawson, L. Simons, and D. Bates. 2008. Applications and opportunities for ultrasound assisted extraction in the food industry — A review. Innovative Food Science & Emerging Technologies 9 (2):161–9. doi: 10.1016/j.ifset.2007.04.014.
  • Vinatoru, M. 2001. An overview of the ultrasonically assisted extraction of bioactive principles from herbs. Ultrasonics Sonochemistry 8 (3):303–13. doi: 10.1016/S1350-4177(01)00071-2.
  • Vorobiev, E., and F. Chemat. 2013. 3 - Principles of physically assisted extractions and applications in the food, beverage and nutraceutical industries. In Separation, extraction and concentration processes in the food, beverage and nutraceutical industries, ed. S. S. H. Rizvi, 71–108. Cambridge, UK: Woodhead Publishing.
  • Wang, L. J. 2011. Advances in extraction of plant products in nutraceutical processing. In Handbook of nutraceuticals Volume II: Scale-up, processing and automation, ed. Y. V. Pathak, 15–52. Boca Raton: CRC Press.
  • Watanabe, E., K. Kuchta, M. Kimura, H. W. Rauwald, T. Kamei, and J. Imanishi. 2015. Effects of bergamot (Citrus bergamia (Risso) Wright & Arn.) essential oil aromatherapy on mood states, parasympathetic nervous system activity, and salivary cortisol levels in 41 healthy females. Forschende Komplementarmedizin (2006) 22 (1):43–9. doi: 10.1159/000380989.
  • Wu, Q., Z. Li, X. Chen, Z. Yun, T. Li, and Y. Jiang. 2019. Comparative metabolites profiling of harvested papaya (Carica papaya L.) peel in response to chilling stress. Journal of the Science of Food and Agriculture 99 (15):6868–81. doi: 10.1002/jsfa.9972.
  • Wu, Q., Z. Zhang, H. Zhu, T. Li, X. Zhu, H. Gao, Z. Yun, and Y. Jiang. 2019. Comparative volatile compounds and primary metabolites profiling of pitaya fruit peel after ozone treatment. Journal of the Science of Food and Agriculture 99 (5):2610–21. doi: 10.1002/jsfa.9479.
  • Xhaxhiu, K., A. Korpa, A. Mele, and T. Kota. 2013. Ultrasonic and soxhlet extraction characteristics of the orange peel from “Moro” Cultivars grown in Albania. Journal of Essential Oil Bearing Plants 16 (4):421–8. doi: 10.1080/0972060X.2013.813277.
  • Xie, J.-H., M.-Y. Xie, M.-Y. Shen, S.-P. Nie, C. Li, and Y.-X. Wang. 2010. Optimisation of microwave-assisted extraction of polysaccharides from Cyclocarya paliurus (Batal.) Iljinskaja using response surface methodology. Journal of the Science of Food and Agriculture 90 (8):1353–60. doi: 10.1002/jsfa.3935.
  • Yaghmaie, P., K. Parivar, and M. Haftsavar. 2011. Effects of Citrus aurantifolia peel essential oil on serum cholesterol levels in Wistar rats. Journal of Paramedical Sciences 2 (1):29–32.
  • Yamauchi, Y., and M. Saito. 1990. Fractionation of lemon-peel oil by semi-preparative supercritical fluid chromatography. Journal of Chromatography A 505 (1):237–46. doi: 10.1016/S0021-9673(01)93082-1.
  • Yang, S. eds. 2016. Comprehensive utilization of citrus by-products. New York: Academic Press.
  • Zhang, B., X.-R. Yin, J.-Y. Shen, K.-S. Chen, and I. B. Ferguson. 2009. Volatiles production and lipoxygenase gene expression in kiwifruit peel and flesh during fruit ripening. Journal of the American Society for Horticultural Science 134 (4):472–7. doi: 10.21273/JASHS.134.4.472.
  • Zhang, H.-F., X.-H. Yang, and Y. Wang. 2011. Microwave assisted extraction of secondary metabolites from plants: Current status and future directions. Trends in Food Science & Technology 22 (12):672–88. doi: 10.1016/j.tifs.2011.07.003.
  • Zhang, H., Y. Xie, C. Liu, S. Chen, S. Hu, Z. Xie, X. Deng, and J. Xu. 2017. Comprehensive comparative analysis of volatile compounds in citrus fruits of different species. Food Chemistry 230:316–26. doi: 10.1016/j.foodchem.2017.03.040.
  • Zhang, P., S. Fuentes, T. Siebert, M. Krstic, M. Herderich, E. W. R. Barlow, and K. Howell. 2016. Terpene evolution during the development of Vitis vinifera L. cv. Shiraz grapes. Food Chemistry 204:463–74. doi: 10.1016/j.foodchem.2016.02.125.
  • Zhang, P., S. Fuentes, Y. Wang, R. Deng, M. Krstic, M. Herderich, E. W. Barlow, and K. Howell. 2016. Distribution of rotundone and possible translocation of related compounds amongst grapevine tissues in Vitis vinifera L. cv. Shiraz. Frontiers in Plant Science 7:859 doi: 10.3389/fpls.2016.00859.
  • Zhong, S., J. Ren, D. Chen, S. Pan, K. Wang, S. Yang, and G. Fan. 2014. Free and bound volatile compounds in juice and peel of Eureka lemon. Food Science and Technology Research 20 (1):167–74. doi: 10.3136/fstr.20.167.

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