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Review Articles

Recent progress in oil-in-water-in-oil (O/W/O) double emulsions

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References

  • Aguiar, M. C. S., M. F. das Gracas Fernandes da Silva, J. B. Fernandes, and M. R. Forim. 2020. Evaluation of the microencapsulation of orange essential oil in biopolymers by using a spray-drying process. Scientific Reports 10 (1):11799.
  • Akamatsu, K., R. Kurita, D. Sato, and S. I. Nakao. 2019. Aqueous two-phase system formation in small droplets by shirasu porous glass membrane emulsification followed by water extraction. Langmuir 35 (30):9825–30.
  • Aserin, A. 2008. Multiple emulsion technology and applications. Hoboken, NJ: John Wiley & Sons, Inc.
  • Balcaen, M., L. Vermeir, A. Declerck, and P. Van Der Meeren. 2016. Simple and straightforward determination of the enclosed water volume fraction of W/O/W double emulsions by analytical photocentrifugation. Particulate Science and Technology 34 (5):565–70. doi: 10.1080/02726351.2015.1090507.
  • Benichou, A., A. Aserin, and N. Garti. 2004. Double emulsions stabilized with hybrids of natural polymers for entrapment and slow release of active matters. Advances in Colloid and Interface Science 108-109:29–41.
  • Benichou, A., A. Aserin, and N. Garti. 2007. O/W/O double emulsions stabilized with WPI–polysaccharide conjugates. Colloids and Surfaces A: Physicochemical and Engineering Aspects 297 (1-3):211–20. doi: 10.1016/j.colsurfa.2006.10.048.
  • Bi, C. H., Z. M. Yan, P. L. Wang, A. Alkhatib, J. Y. Zhu, H. C. Zou, D. Y. Sun, X. D. Zhu, F. Gao, W. T. Shi, et al. 2020. Effect of high pressure homogenization treatment on the rheological properties of citrus peel fiber/corn oil emulsion. Journal of the Science of Food and Agriculture 100 (9):3658–65.
  • Boonlao, N., S. Shrestha, M. B. Sadiq, and A. K. Anal. 2020. Influence of whey protein-xanthan gum stabilized emulsion on stability and in vitro digestibility of encapsulated astaxanthin. Journal of Food Engineering 272:109859. doi: 10.1016/j.jfoodeng.2019.109859.
  • Cai, Y., L. Huang, X. Tao, J. Su, C. Xiao, M. Zhao, Q. Zhao, and P. Van der Meeren. 2021. Enhanced acidic stability of O/W emulsions by synergistic interactions between okara protein and carboxymethyl cellulose. LWT 146:111439. doi: 10.1016/j.lwt.2021.111439.
  • Cheng, J., Q. Kan, J. Cao, O. E. Dudu, and T. Yan. 2021. Interfacial compositions of fat globules modulate coconut oil crystallization behavior and stability of whipped-frozen emulsions. Food Hydrocolloids 114:106580. doi: 10.1016/j.foodhyd.2020.106580.
  • Cho, Y. H., and J. Park. 2003. Evaluation of process parameters in the O/W/O multiple emulsion method for flavor encapsulation. Journal of Food Science 68 (2):534–8. doi: 10.1111/j.1365-2621.2003.tb05707.x.
  • Choi, A.-J., C.-J. Kim, Y.-J. Cho, J.-K. Hwang, and C.-T. Kim. 2011. Characterization of capsaicin-loaded nanoemulsions stabilized with alginate and chitosan by self-assembly. Food and Bioprocess Technology 4 (6):1119–26. doi: 10.1007/s11947-011-0568-9.
  • Dickinson, E. 2010a. Double emulsions stabilized by food biopolymers. Food Biophysics 6 (1):1–11. doi: 10.1007/s11483-010-9188-6.
  • Dickinson, E. 2010b. Food emulsions and foams: Stabilization by particles. Current Opinion in Colloid & Interface Science 15 (1-2):40–9. doi: 10.1016/j.cocis.2009.11.001.
  • Dickinson, E. 2019. Strategies to control and inhibit the flocculation of protein-stabilized oil-in-water emulsions. Food Hydrocolloids 96:209–23. doi: 10.1016/j.foodhyd.2019.05.021.
  • Ding, S., C. A. Serra, T. F. Vandamme, W. Yu, and N. Anton. 2019. Double emulsions prepared by two-step emulsification: History, state-of-the-art and perspective. Journal of Controlled Release 295:31–49.
  • Dupont, H., V. Maingret, V. Schmitt, and V. Héroguez. 2021. New insights into the formulation and polymerization of pickering emulsions stabilized by natural organic particles. Macromolecules 54 (11):4945–70. doi: 10.1021/acs.macromol.1c00225.
  • Dwyer, S. P. O., D. O’Beirne, D. Ní Eidhin, and B. T. O’Kennedy. 2012. Effects of green tea extract and alpha-tocopherol on the lipid oxidation rate of omega-3 oils, incorporated into table spreads, prepared using multiple emulsion technology. Journal of Food Science 77 (12):N58–65. doi: 10.1111/j.1750-3841.2012.02980.x.
  • Fang, Z., X.-R. Cao, Y.-L. Yu, and M. Li. 2019. Fabrication and characterization of microcapsule encapsulating EOR surfactants by microfluidic technique. Colloids and Surfaces A: Physicochemical and Engineering Aspects 570:282–92. doi: 10.1016/j.colsurfa.2019.02.045.
  • Gaonkar, A. G. 1994. Stable multiple emulsions comprising interfacial gelatinous layer, flavor-encapsulating multiple emulsions and low/no-fat food products comprising the same. (Vol. 5332595). U.S.
  • Ghosh, S., and D. Rousseau. 2011. Fat crystals and water-in-oil emulsion stability. Current Opinion in Colloid & Interface Science 16 (5):421–31. doi: 10.1016/j.cocis.2011.06.006.
  • Han, S. W., H. Y. Song, T. W. Moon, and S. J. Choi. 2018. Influence of emulsion interfacial membrane characteristics on Ostwald ripening in a model emulsion. Food Chemistry 242:91–7. doi: 10.1016/j.foodchem.2017.09.018.
  • Heidari, F., S. M. Jafari, A. M. Ziaiifar, and N. Malekjani. 2022. Stability and release mechanisms of double emulsions loaded with bioactive compounds; a critical review. Advances in Colloid and Interface Science 299:102567.
  • Hosseini, S. M., H. Hosseini, M. A. Mohammadifar, A. M. Mortazavian, A. Mohammadi, K. Khosravi-Darani, S. Shojaee-Aliabadi, S. Dehghan, and R. Khaksar. 2013. Incorporation of essential oil in alginate microparticles by multiple emulsion/ionic gelation process. International Journal of Biological Macromolecules 62:582–8.
  • Huynh Mai, C., T. Thanh Diep, T. T. T. Le, and V. Nguyen. 2020. Advances in colloidal dispersions: A review. Journal of Dispersion Science and Technology 41 (4):479–94. doi: 10.1080/01932691.2019.1591970.
  • Hwang, Y. J., C. Oh, and S. G. Oh. 2005. Controlled release of retinol from silica particles prepared in O/W/O emulsion: The effects of surfactants and polymers. Journal of Controlled Release 106 (3):339–49. doi: 10.1016/j.jconrel.2005.05.007.
  • Jahaniaval, F., Y. Kakuda, and V. Abraham. 2003. Characterization of a double emulsion system (oil-in-water-in-oil emulsion) with low solid fats: Microstructure. Journal of the American Oil Chemists’ Society 80 (1):25–31. doi: 10.1007/s11746-003-0645-9.
  • Jiang, Y. S., S. B. Zhang, S. Y. Zhang, and Y. X. Peng. 2021. Comparative study of high‐intensity ultrasound and high‐pressure homogenization on physicochemical properties of peanut protein‐stabilized emulsions and emulsion gels. Journal of Food Process Engineering 44 (6):1–13. doi: 10.1111/jfpe.13710.
  • Kadian, D., A. Kumar, P. C. Badgujar, and R. Sehrawat. 2021. Effect of homogenization and microfluidization on physicochemical and rheological properties of mayonnaise. Journal of Food Process Engineering 44 (4):1–10. doi: 10.1111/jfpe.13661.
  • Katsouli, M., V. Giannou, and C. Tzia. 2020. Enhancement of physicochemical and encapsulation stability of O1/W/O2 multiple nanoemulsions loaded with coenzyme Q10 or conjugated linoleic acid by incorporating polyphenolic extract. Food & Function 11 (10):8878–92. doi: 10.1039/d0fo01707h.
  • Khalid, N., I. Kobayashi, M. A. Neves, K. Uemura, and M. Nakajima. 2018. Microchannel emulsification: A promising technique towards encapsulation of functional compounds. Critical Reviews in Food Science and Nutrition 58 (14):2364–85.
  • Klahn, J. K., J. J. M. Janssen, G. E. J. Vaessen, R. de Swart, and W. G. M. Agterof. 2002. On the escape process during phase inversion of an emulsion. Colloids and Surfaces A: Physicochemical and Engineering Aspects 210 (2-3):167–81. doi: 10.1016/S0927-7757(02)00376-X.
  • Krstonošić, V., L. Dokić, I. Nikolić, and M. Milanović. 2015. Influence of xanthan gum on oil-in-water emulsion characteristics stabilized by OSA starch. Food Hydrocolloids 45:9–17. doi: 10.1016/j.foodhyd.2014.10.024.
  • Kumar, Y., S. Roy, A. Devra, A. Dhiman, and P. K. Prabhakar. 2021. Ultrasonication of mayonnaise formulated with xanthan and guar gums: Rheological modeling, effects on optical properties and emulsion stability. LWT 149:111632. doi: 10.1016/j.lwt.2021.111632.
  • Laugel, C., P. Rafidison, G. Potard, L. Aguadisch, and A. Baillet. 2000. Modulated release of triterpenic compounds from a O/W/O multiple emulsion formulated with dimethicones: Infrared spectrophotometric and differential calorimetric approaches. Journal of Controlled Release 63 (1-2):7–17. doi: 10.1016/S0168-3659(99)00169-8.
  • Leister, N., and H. P. Karbstein. 2020. Evaluating the stability of double emulsions—A review of the measurement techniques for the systematic investigation of instability mechanisms. Colloids and Interfaces 4 (1):8. doi: 10.3390/colloids4010008.
  • Li, G., W. J. Lee, N. Liu, X. Lu, C. P. Tan, O. M. Lai, C. Qiu, and Y. Wang. 2021. Stabilization mechanism of water-in-oil emulsions by medium- and long-chain diacylglycerol: Post-crystallization vs. pre-crystallization. LWT 146:111649. doi: 10.1016/j.lwt.2021.111649.
  • Li, J., L. Xu, Y. Su, C. Chang, Y. Yang, and L. Gu. 2020. Flocculation behavior and gel properties of egg yolk/kappa-carrageenan composite aqueous and emulsion systems: Effect of NaCl. Food Research International 132:108990.
  • Li, M., D. J. McClements, X. Liu, and F. Liu. 2020. Design principles of oil-in-water emulsions with functionalized interfaces: Mixed, multilayer, and covalent complex structures. Comprehensive Reviews in Food Science and Food Safety 19 (6):3159–90. doi: 10.1111/1541-4337.12622.
  • Li, Z., S. Zheng, C. Zhao, M. Liu, Z. Zhang, W. Xu, D. Luo, and B. R. Shah. 2020. Stability, microstructural and rheological properties of Pickering emulsion stabilized by xanthan gum/lysozyme nanoparticles coupled with xanthan gum. International Journal of Biological Macromolecules 165 (Pt B):2387–94.
  • Liao, L., Y. Luo, M. Zhao, and Q. Wang. 2012. Preparation and characterization of succinic acid deamidated wheat gluten microspheres for encapsulation of fish oil. Colloids and Surfaces. B, Biointerfaces 92:305–14.
  • Lin, D., A. L. Kelly, and S. Miao. 2021. Alginate-based emulsion micro-gel particles produced by an external/internal O/W/O emulsion-gelation method: Formation, suspension rheology, digestion, and application to gel-in-gel beads. Food Hydrocolloids 120:106926. doi: 10.1016/j.foodhyd.2021.106926.
  • Liu, W.-Y., M.-Q. Feng, M. Wang, P. Wang, J. Sun, X.-L. Xu, and G.-H. Zhou. 2018. Influence of flaxseed gum and NaCl concentrations on the stability of oil-in-water emulsions. Food Hydrocolloids 79:371–81. doi: 10.1016/j.foodhyd.2018.01.010.
  • Loi, C. C., G. T. Eyres, and E. J. Birch. 2019. Effect of mono- and diglycerides on physical properties and stability of a protein-stabilised oil-in-water emulsion. Journal of Food Engineering 240:56–64. doi: 10.1016/j.jfoodeng.2018.07.016.
  • Low, L. E., S. P. Siva, Y. K. Ho, E. S. Chan, and B. T. Tey. 2020. Recent advances of characterization techniques for the formation, physical properties and stability of Pickering emulsion. Advances in Colloid and Interface Science 277:102117.
  • Lu, P., L. Wu, and X. Liu. 2017. Visualization study of oil-in-water-in-oil (O/W/O) double emulsion formation in a simple and robust co-flowing microfluidic device. Micromachines 8 (9):268. doi: 10.3390/mi8090268.
  • Lutz, R., A. Aserin, L. Wicker, and N. Garti. 2009. Double emulsions stabilized by a charged complex of modified pectin and whey protein isolate. Colloids and Surfaces. B, Biointerfaces 72 (1):121–7.
  • Malkin, A. Y., I. Masalova, P. Slatter, and K. Wilson. 2004. Effect of droplet size on the rheological properties of highly-concentrated w/o emulsions. Rheologica Acta 43 (6):584–91. doi: 10.1007/s00397-003-0347-2.
  • Matsuyama, S., M. Kazuhiro, M. Nakauma, T. Funami, Y. Nambu, K. Matsumiya, and Y. Matsumura. 2021. Stabilization of whey protein isolate-based emulsions via complexation with xanthan gum under acidic conditions. Food Hydrocolloids 111:106365. doi: 10.1016/j.foodhyd.2020.106365.
  • McClements, D. J. 2015. Encapsulation, protection, and release of hydrophilic active components: Potential and limitations of colloidal delivery systems. Advances in Colloid and Interface Science 219:27–53. doi: 10.1016/j.cis.2015.02.002.
  • Mishra, B., and J. K. Pandit. 1989. Prolonged release of pentazocine from multiple O/W/O emulsions. Drug Development and Industrial Pharmacy 15:1217–30.
  • Muschiolik, G., and E. Dickinson. 2017. Double emulsions relevant to food systems: Preparation, stability, and applications. Comprehensive Reviews in Food Science and Food Safety 16 (3):532–55. doi: 10.1111/1541-4337.12261.
  • O’Dwyer, S. P., D. O’Beirne, D. Ní Eidhin, J. A. Hannon, and B. T. O’Kennedy. 2013. Oxidative stability of tuna fat spreads (O/W/O emulsions) using conventional lipid oxidation methods, SPME-GC/MS and sensory analysis. European Food Research and Technology 237 (3):385–98. doi: 10.1007/s00217-013-2001-2.
  • O’Dwyer, S. P., D. O’Beirne, D. Ní Eidhin, A. A. Hennessy, and B. T. O’Kennedy. 2013. Formation, rheology and susceptibility to lipid oxidation of multiple emulsions (O/W/O) in table spreads containing omega-3 rich oils. LWT - Food Science and Technology 51 (2):484–91. doi: 10.1016/j.lwt.2012.12.008.
  • Oh, C., J. H. Park, S. i Shin, and S. G. Oh. 2004. O/W/O multiple emulsions via one‐step emulsification process. Journal of Dispersion Science and Technology 25 (1):53–62. doi: 10.1081/DIS-120027668.
  • Oppermann, A. K. L., B. Piqueras-Fiszman, C. de Graaf, E. Scholten, and M. Stieger. 2016. Descriptive sensory profiling of double emulsions with gelled and non-gelled inner water phase. Food Research International 85:215–23.
  • Ozturk, B., and D. J. McClements. 2016. Progress in natural emulsifiers for utilization in food emulsions. Current Opinion in Food Science 7:1–6. doi: 10.1016/j.cofs.2015.07.008.
  • Patel, A. R. 2017. Surfactant-free oil-in-water-in-oil emulsions stabilized solely by natural components-biopolymers and vegetable fat crystals. MRS Advances 2 (19-20):1095–102. doi: 10.1557/adv.2017.33.
  • Patel, A. R., and K. Dewettinck. 2016. Edible oil structuring: An overview and recent updates. Food & Function 7 (1):20–9.
  • Patel, V., J. Andrade, and D. Rousseau. 2021. Fat crystal-stabilized water-in-oil emulsion breakdown and marker release during in vitro digestion. LWT 149:111802. doi: 10.1016/j.lwt.2021.111802.
  • Pays, K., J. Giermanska-Kahn, B. Pouligny, J. Bibette, and F. Leal-Calderon. 2001. Coalescence in surfactant-stabilized double emulsions. Langmuir 17 (25):7758–69. doi: 10.1021/la010735x.
  • Piroozian, A., M. Hemmati, M. Safari, A. Rahimi, O. Rahmani, S. M. Aminpour, and A. B. Pour. 2021. A mechanistic understanding of the water-in-heavy oil emulsion viscosity variation: Effect of asphaltene and wax migration. Colloids and Surfaces A: Physicochemical and Engineering Aspects 608:125604. doi: 10.1016/j.colsurfa.2020.125604.
  • Pradhan, M., and D. Rousseau. 2012. A one-step process for oil-in-water-in-oil double emulsion formation using a single surfactant. Journal of Colloid and Interface Science 386 (1):398–404.
  • Pratap, A. P., K. Datir, S. Mane, and G. Shukla. 2021. Synthesis of dimeric surfactant based on neem fatty acid and its characterization. Chemical Papers 75 (5):1981–91. doi: 10.1007/s11696-020-01429-2.
  • Qin, S., H. Li, and C. Hu. 2021. Thermal properties and morphology of chitosan/gelatin composite shell microcapsule via multi-emulsion. Materials Letters 291:129475. doi: 10.1016/j.matlet.2021.129475.
  • Rahim, A., A. Milad, N. I. M. Yusoff, G. Airey, and N. Thom. 2021. Stiffening effect of fillers based on rheology and micromechanics models. Applied Sciences 11 (14):6521. doi: 10.3390/app11146521.
  • Ren, L., B. Huang, W. Fang, D. Zhang, H. Cheng, Z. Song, D. Yan, Y. Li, Q. Wang, Z. Zhou, et al. 2021. Multi-encapsulation combination of O/W/O emulsions with polyurea microcapsules for controlled release and safe application of dimethyl disulfide. ACS Applied Materials & Interfaces 13 (1):1333–44. doi: 10.1021/acsami.0c16613.
  • Rousseau, D. 2013. Trends in structuring edible emulsions with Pickering fat crystals. Current Opinion in Colloid & Interface Science 18 (4):283–91. doi: 10.1016/j.cocis.2013.04.009.
  • Santos, J., N. Calero, L. A. Trujillo-Cayado, M. C. Alfaro, and J. Muñoz. 2018. The role of processing temperature in flocculated emulsions. Industrial & Engineering Chemistry Research 57 (3):807–12. doi: 10.1021/acs.iecr.7b04389.
  • Schmidt, U. S., R. Bernewitz, G. Guthausen, and H. P. Schuchmann. 2015. Investigation and application of measurement techniques for the determination of the encapsulation efficiency of O/W/O multiple emulsions stabilized by hydrocolloid gelation. Colloids and Surfaces A: Physicochemical and Engineering Aspects 475:55–61. doi: 10.1016/j.colsurfa.2014.12.040.
  • Stasse, M., E. Laurichesse, T. Ribaut, O. Anthony, V. Héroguez, and V. Schmitt. 2020. Formulation of concentrated oil-in-water-in-oil double emulsions for fragrance encapsulation. Colloids and Surfaces A: Physicochemical and Engineering Aspects 592:124564. doi: 10.1016/j.colsurfa.2020.124564.
  • Su, J., Q. Guo, Y. Chen, W. Dong, L. Mao, Y. Gao, and F. Yuan. 2020. Characterization and formation mechanism of lutein Pickering emulsion gels stabilized by β-lactoglobulin-gum arabic composite colloidal nanoparticles. Food Hydrocolloids 98:105276.
  • Sung, M.-R., H. Xiao, E. A. Decker, and D. J. McClements. 2015. Fabrication, characterization and properties of filled hydrogel particles formed by the emulsion-template method. Journal of Food Engineering 155:16–21. doi: 10.1016/j.jfoodeng.2015.01.007.
  • Svanberg, L., S. Wassen, G. Gustinelli, and C. Ohgren. 2019. Design of microcapsules with bilberry seed oil, cold-set whey protein hydrogels and anthocyanins: Effect of pH and formulation on structure formation kinetics and resulting microstructure during purification processing and storage. Food Chemistry 280:146–53. doi: 10.1016/j.foodchem.2018.11.129.
  • Szumała, P., and N. Luty. 2016. Effect of different crystalline structures on W/O and O/W/O wax emulsion stability. Colloids and Surfaces A: Physicochemical and Engineering Aspects 499:131–40. doi: 10.1016/j.colsurfa.2016.04.022.
  • Thanh Diep, T., T. Phan Dao, H. T. Vu, B. Quoc Phan, D. Ngoc Dao, T. Huu Bui, V. Truong, and V. Nguyen. 2018. Double emulsion oil-in water-in oil (O/W/O) stabilized by sodium caseinate and k-carrageenan. Journal of Dispersion Science and Technology 39 (12):1752–7. doi: 10.1080/01932691.2018.1462198.
  • Triplett, M. D., and J. F. Rathman. 2009. Optimization of β-carotene loaded solid lipid nanoparticles preparation using a high shear homogenization technique. Journal of Nanoparticle Research 11 (3):601–614. doi: 10.1007/s11051-008-9402-3.
  • Ushikubo, F. Y., and R. L. Cunha. 2014. Stability mechanisms of liquid water-in-oil emulsions. Food Hydrocolloids 34:145–53. doi: 10.1016/j.foodhyd.2012.11.016.
  • Verma, K., A. Tarafdar, V. Mishra, N. Dilbaghi, K. K. Kondepudi, and P. C. Badgujar. 2021. Nanoencapsulated curcumin emulsion utilizing milk cream as a potential vehicle by microfluidization: Bioaccessibility, cytotoxicity and physico-functional properties. Food Research International 148:110611. doi: 10.1016/j.foodres.2021.110611.
  • Wang, Y., A. Zhang, X. Wang, N. Xu, and L. Jiang. 2020. The radiation assisted-Maillard reaction comprehensively improves the freeze-thaw stability of soy protein-stabilized oil-in-water emulsions. Food Hydrocolloids 103:105684. doi: 10.1016/j.foodhyd.2020.105684.
  • Weiss, J., J. N. Coupland, and D. J. McClements. 1996. Solubilization of hydrocarbon emulsion droplets suspended in nonionic surfactant micelle solutions. The Journal of Physical Chemistry 100 (3):1066–71. doi: 10.1021/jp9524892.
  • Weiss, J., I. Scherze, and G. Muschiolik. 2005. Polysaccharide gel with multiple emulsion. Food Hydrocolloids 19 (3):605–15. doi: 10.1016/j.foohyd.2004.10.023.
  • Xiao, N., W. He, Y. Zhao, Y. Yao, M. Xu, H. Du, N. Wu, and Y. Tu. 2021. Effect of pH and xanthan gum on emulsifying property of ovalbumin stabilized oil-in water emulsions. LWT 147:111621. doi: 10.1016/j.lwt.2021.111621.
  • Xiong, Y., Q. Li, S. Miao, Y. Zhang, B. Zheng, and L. Zhang. 2019. Effect of ultrasound on physicochemical properties of emulsion stabilized by fish myofibrillar protein and xanthan gum. Innovative Food Science & Emerging Technologies 54:225–34. doi: 10.1016/j.ifset.2019.04.013.
  • Xu, W., Y. Xiong, Z. Li, D. Luo, Z. Wang, Y. Sun, and B. R. Shah. 2020. Stability, microstructural and rheological properties of complex prebiotic emulsion stabilized by sodium caseinate with inulin and konjac glucomannan. Food Hydrocolloids 105:105772. doi: 10.1016/j.foodhyd.2020.105772.
  • Yang, J., Z. Gu, L. Cheng, Z. Li, C. Li, X. Ban, and Y. Hong. 2021. Preparation and stability mechanisms of double emulsions stabilized by gelatinized native starch. Carbohydrate Polymers 262:117926.
  • Yang, J., C. Qiu, G. Li, W. J. Lee, C. P. Tan, O. M. Lai, and Y. Wang. 2020. Effect of diacylglycerol interfacial crystallization on the physical stability of water-in-oil emulsions. Food Chemistry 327:127014.
  • Yarranton, H. W., P. Urrutia, and D. M. Sztukowski. 2007. Effect of interfacial rheology on model emulsion coalescence II. Emulsion coalescence. Journal of Colloid and Interface Science 310 (1):253–9.
  • Yoshida, K., T. Sekine, F. Matsuzaki, T. Yanaki, and M. Yamaguchi. 1999. Stability of Vitamin A in oil-in-water-in-oil-type multiple emulsions. Journal of the American Oil Chemists’ Society 76 (2):1–6. doi: 10.1007/s11746-999-0212-2.
  • Yu, H., G. Huang, Y. Ma, Y. Liu, X. Huang, Q. Zheng, P. Yue, and M. Yang. 2021. Cellulose nanocrystals based clove oil Pickering emulsion for enhanced antibacterial activity. International Journal of Biological Macromolecules 170:24–32.
  • Yu, S.-C., A. Bochot, G. L. Bas, M. Chéron, J. Mahuteau, J.-L. Grossiord, M. Seiller, and D. Duchêne. 2003. Effect of camphor/cyclodextrin complexation on the stability of O/W/O multiple emulsions. International Journal of Pharmaceutics 261 (1-2):1–8. doi: 10.1016/S0378-5173(03)00261-8.
  • Yuan, S., Q. Liu, L. Zhu, J. Ning, H. Yang, K. Ning, and Y. He. 2021. Emulsion hydrogel microbeads encapsulating extractants prepared by O/W/O double Pickering emulsions for the recovery of Cu(II) from water. Colloids and Surfaces A: Physicochemical and Engineering Aspects 625:126932. doi: 10.1016/j.colsurfa.2021.126932.
  • Zang, X., J. Wang, G. Yu, and J. Cheng. 2019. Addition of anionic polysaccharides to improve the stability of rice bran protein hydrolysate-stabilized emulsions. LWT 111:573–81. doi: 10.1016/j.lwt.2019.04.020.
  • Zeeb, B., M. Gibis, L. Fischer, and J. Weiss. 2012. Influence of interfacial properties on Ostwald ripening in crosslinked multilayered oil-in-water emulsions. Journal of Colloid and Interface Science 387 (1):65–73.
  • Zembyla, M., B. S. Murray, and A. Sarkar. 2020. Water-in-oil emulsions stabilized by surfactants, biopolymers and/or particles: A review. Trends in Food Science & Technology 104:49–59. doi: 10.1016/j.tifs.2020.07.028.
  • Zhang, K., Z. Mao, Y. Huang, Y. Xu, C. Huang, Y. Guo, X. Ren, and C. Liu. 2020. Ultrasonic assisted water-in-oil emulsions encapsulating macro-molecular polysaccharide chitosan: Influence of molecular properties, emulsion viscosity and their stability. Ultrasonics Sonochemistry 64:105018. doi: 10.1016/j.ultsonch.2020.105018.
  • Zhang, Y., F. Zhou, M. Zhao, L. Lin, Z. Ning, and B. Sun. 2018. Soy peptide nanoparticles by ultrasound-induced self-assembly of large peptide aggregates and their role on emulsion stability. Food Hydrocolloids 74:62–71. doi: 10.1016/j.foodhyd.2017.07.021.
  • Zhou, L., J. Zhang, L. Xing, and W. Zhang. 2021. Applications and effects of ultrasound assisted emulsification in the production of food emulsions: A review. Trends in Food Science & Technology 110:493–512. doi: 10.1016/j.tifs.2021.02.008.

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