1932

Abstract

Emulsions, i.e., the dispersion of liquid droplets in a nonmiscible liquid phase, are overwhelmingly present in food products. In such systems, both liquid phases (generally, oil and water) are separated by a narrow region, the oil-water interface. Despite the fact that this interface is very thin (in the nanometer range), it represents a large surface area and controls to a great extent the physicochemical stability of emulsions. This review provides an overview of the aspects that govern the composition, structure, and mechanical properties of interfaces in food emulsions, taking into account the complexity of such systems (presence of numerous surface-active molecules, influence of processing steps, and dynamic evolution due to chemical changes). We also review methods that have conventionally, or recently, been used to study liquid-liquid interfaces at various scales. Finally, we focus on the link between interfacial properties and the physical, chemical, and digestive stability of emulsions at different levels and point out trends to control stability via interfacial engineering.

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2018-03-25
2024-04-24
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Literature Cited

  1. Aboofazeli R, Lawrence MJ. 1994. Investigations into the formation and characterization of phospholipid microemulsions. II. Pseudo-ternary phase diagrams of systems containing water-lecithin-isopropyl myristate and alcohol: influence of purity of lecithin. Int. J. Pharm. 106:51–61 [Google Scholar]
  2. Aguilar Gutierrez OF, Herrera Valencia EE, Rey AD. 2017. Generalized Boussinesq-Scriven surface fluid model with curvature dissipation for liquid surfaces and membranes. J. Colloid Interface Sci. 503:103–14 [Google Scholar]
  3. Aloi A, Vilanova N, Albertazzi L, Voets IK. 2016. iPAINT: a general approach tailored to image the topology of interfaces with nanometer resolution. Nanoscale 8:8712–16 [Google Scholar]
  4. Alvarez NJ, Walker LM, Anna SL. 2012. A criterion to assess the impact of confined volumes on surfactant transport to liquid-fluid interfaces. Soft Matter 8:8917–25 [Google Scholar]
  5. Amine C, Dreher J, Helgason T, Tadros T. 2014. Investigation of emulsifying properties and emulsion stability of plant and milk proteins using interfacial tension and interfacial elasticity. Food Hydrocoll 39:180–86 [Google Scholar]
  6. Ashby NP, Binks BP. 2000. Pickering emulsions stabilised by Laponite clay particles. Phys. Chem. Chem. Phys. 2:5640–46 [Google Scholar]
  7. Atkinson PJ, Dickinson E, Horne DS, Richardson RM. 1995. Neutron reflectivity of adsorbed β-casein and β-lactoglobulin at the air/water interface. J. Chem. Soc. Faraday Trans. 91:172847–54 [Google Scholar]
  8. Audebrand M, Ropers M-H, Riaublanc A. 2013. Disappearance of intermolecular β-sheets upon adsorption of β-lactoglobulin aggregates at the oil-water interfaces of emulsions. Food Hydrocoll 33:2178–85 [Google Scholar]
  9. Aynié S, Le Meste M, Colas B, Lorient D. 1992. Interactions between lipids and milk proteins in emulsion. J. Food Sci. 57:4883–91 [Google Scholar]
  10. Bernardini C, Stoyanov SD, Arnaudov LN, Cohen Stuart MA. 2013. Colloids in Flatland: a perspective on 2D phase-separated systems, characterisation methods, and lineactant design. Chem. Soc. Rev. 42:2100–29 [Google Scholar]
  11. Berry JD, Neeson MJ, Dagastine RR, Chan DYC, Tabor RF. 2015. Measurement of surface and interfacial tension using pendant drop tensiometry. J. Colloid Interface Sci. 454:226–37 [Google Scholar]
  12. Berton C, Genot C, Guibert D, Ropers M-H. 2012.a Effect of lateral heterogeneity in mixed surfactant-stabilized interfaces on the oxidation of unsaturated lipids in oil-in-water emulsions. J. Colloid Interface Sci. 377:1244–50 [Google Scholar]
  13. Berton C, Genot C, Ropers M-H. 2011.a Quantification of unadsorbed protein and surfactant emulsifiers in oil-in-water emulsions. J. Colloid Interface Sci. 354:2739–48 [Google Scholar]
  14. Berton C, Ropers M-H, Guibert D, Solé V, Genot C. 2012.b Modifications of interfacial proteins in oil-in-water emulsions prior to and during lipid oxidation. J. Agric. Food Chem. 60:358659–71 [Google Scholar]
  15. Berton C, Ropers M-H, Viau M, Genot C. 2011.b Contribution of the interfacial layer to the protection of emulsified lipids against oxidation. J. Agric. Food Chem. 59:95052–61 [Google Scholar]
  16. Berton-Carabin CC, Coupland JN, Elias RJ. 2013. Effect of the lipophilicity of model ingredients on their location and reactivity in emulsions and solid lipid nanoparticles. Colloids Surf. A 431:9–17 [Google Scholar]
  17. Berton-Carabin CC, Ropers M-H, Genot C. 2014. Lipid oxidation in oil-in-water emulsions: Involvement of the interfacial layer. Compr. Rev. Food Sci. Food Saf. 13:945–77 [Google Scholar]
  18. Berton-Carabin CC, Schröder A, Rovalino Cordova A, Schroën K, Sagis LMC. 2016. Protein and lipid oxidation affect the viscoelasticity of whey protein layers at the oil-water interface. Eur. J. Lipid Sci. Technol. 118:1630–43 [Google Scholar]
  19. Berton-Carabin CC, Schroën K. 2015. Pickering emulsions for food applications: background, trends and challenges. Annu. Rev. Food Sci. Technol. 6:263–97 [Google Scholar]
  20. Beverung CJ, Radke CJ, Blanch HW. 1999. Protein adsorption at the oil/water interface: characterization of adsorption kinetics by dynamic interfacial tension measurements. Biophys. Chem. 81:159–80 [Google Scholar]
  21. Bos MA, van Vliet T. 2001. Interfacial rheological properties of adsorbed protein layers and surfactants: a review. Adv. Colloid Interface Sci. 91:437–71 [Google Scholar]
  22. Bourlieu C, Bouzerzour K, Ferret-Bernard S, Le Bourgot C, Chever S. et al. 2015. Infant formula interface and fat source impact on neonatal digestion and gut microbiota. Eur. J. Lipid Sci. Technol. 117:101500–12 [Google Scholar]
  23. Carbonaro M, Cappelloni M, Nicoli S, Lucarini M, Carnovale E. 1997. Solubility-digestibility relationship of legume proteins. J. Agric. Food Chem. 45:93387–94 [Google Scholar]
  24. Chen B, Li H, Ding Y, Rao J. 2011. Improvement of physicochemical stabilities of emulsions containing oil droplets coated by non-globular protein-beet pectin complex membranes. Food Res. Int. 44:51468–75 [Google Scholar]
  25. Chen J, Dickinson E. 1995. Protein/surfactant interfacial interactions. Part 3. Competitive adsorption of protein + surfactant in emulsions. Colloids Surf. A 101:77–85 [Google Scholar]
  26. Chen J, Dickinson E, Iveson G. 1993. Interfacial interactions, competitive adsorption and emulsion stability. Food Struct 12:21 [Google Scholar]
  27. Cheng Y, Xiong YL, Chen J. 2010. Antioxidant and emulsifying properties of potato protein hydrolysate in soybean oil-in-water emulsions. Food Chem 120:1101–8 [Google Scholar]
  28. Chu B-S, Rich GT, Ridout MJ, Faulks RM, Wickham MSJ, Wilde PJ. 2009. Modulating pancreatic lipase activity with galactolipids: effects of emulsion interfacial composition. Langmuir 25:169352–60 [Google Scholar]
  29. Corstens MN, Berton-Carabin CC, De Vries R, Troost FJ, Masclee AAM, Schroën K. 2017.a Food-grade micro-encapsulation systems that may induce satiety via delayed lipolysis: a review. Crit. Rev. Food Sci. Nutr. 57:102218–44 [Google Scholar]
  30. Corstens MN, Berton-Carabin CC, Elichiry-Ortiz PT, Hol K, Troost FJ. et al. 2017.b Emulsion-alginate beads designed to control in vitro intestinal lipolysis: towards appetite control. J. Funct. Foods. 34:319–28 [Google Scholar]
  31. Corstens MN, Berton-Carabin CC, Kester A, Fokkink R, van den Broek JM. et al. 2017.c Destabilization of multilayered interfaces in digestive conditions limits their ability to prevent lipolysis in emulsions. Food Struct 12:54–63 [Google Scholar]
  32. Corstens MN, Osorio Caltenco LA, de Vries R, Schroën K, Berton-Carabin CC. 2017.d Interfacial behaviour of biopolymer multilayers: influence of in vitro digestive conditions. Colloids Surf. B 153:199–207 [Google Scholar]
  33. Costa ALR, Gomes A, de Andrade CCP, Cunha RL. 2017. Emulsifier functionality and process engineering: progress and challenges. Food Hydrocoll 68:69–80 [Google Scholar]
  34. Couëdelo L, Amara S, Lecomte M, Meugnier E, Monteil J. et al. 2015. Impact of various emulsifiers on ALA bioavailability and chylomicron synthesis through changes in gastrointestinal lipolysis. Food Funct.1726–35 [Google Scholar]
  35. Courthaudon JL, Dickinson E, Christie WW. 1991.a Competitive adsorption of lecithin and b-casein in oil in water emulsions. J. Agric. Food Chem. 39:1365–68 [Google Scholar]
  36. Courthaudon JL, Dickinson E, Dalgleish DG. 1991.b Competitive adsorption of beta-casein and nonionic surfactants in oil-in-water emulsions. J. Colloid Interface Sci. 145:2390–95 [Google Scholar]
  37. Courthaudon JL, Dickinson E, Matsumura Y, Clark DC. 1991.c Competitive adsorption of β-lactoglobulin + Tween 20 at the oil-water interface. Colloids Surf 56:293–300 [Google Scholar]
  38. Cui Z, Chen Y, Kong X, Zhang C, Hua Y. 2014. Emulsifying properties and oil/water (O/W) interface adsorption behavior of heated soy proteins: effects of heating concentration, homogenizer rotating speed, and salt addition level. J. Agric. Food Chem. 62:1634–42 [Google Scholar]
  39. Dalgleish DG. 1997. Adsorption of proteins and the stability of emulsions. Trends Food Sci. Technol. 8:1–6 [Google Scholar]
  40. Dan A, Kotsmar C, Ferri JK, Javadi A, Karbaschi M. et al. 2012. Mixed protein-surfactant adsorption layers formed in a sequential and simultaneous way at water-air and water-oil interfaces. Soft Matter 8:226057–65 [Google Scholar]
  41. Day L. 2013. Proteins from land plants: potential resources for human nutrition and food security. Trends Food Sci. Technol. 32:25–42 [Google Scholar]
  42. Delahaije RJBM, Gruppen H, van Nieuwenhuijzen NH, Giuseppin MLF, Wierenga PA. 2013.a Effect of glycation on the flocculation behavior of protein-stabilized oil-in-water emulsions. Langmuir 29:4915201–8 [Google Scholar]
  43. Delahaije RJBM, Wierenga PA, Giuseppin MLF, Gruppen H. 2014. Improved emulsion stability by succinyl-ation of patatin is caused by partial unfolding rather than charge effects. J. Colloid Interface Sci. 430:69–77 [Google Scholar]
  44. Delahaije RJBM, Wierenga PA, van Nieuwenhuijzen NH, Giuseppin MLF, Gruppen H. 2013.b Protein concentration and protein-exposed hydrophobicity as dominant parameters determining the flocculation of protein-stabilized oil-in-water emulsions. Langmuir 29:3711567–74 [Google Scholar]
  45. Destribats M, Rouvet M, Gehin-Delval C, Schmitt C, Binks BP. 2014. Emulsions stabilised by whey protein microgel particles: towards food-grade Pickering emulsions. Soft Matter 10:6941–54 [Google Scholar]
  46. Dickinson E. 1992.a An Introduction to Food Colloids Oxford: Oxford Univ. Press
  47. Dickinson E. 1992.b Structure and composition of adsorbed protein layers and the relationship to emulsion stability. J. Chem. Soc. Faraday Trans. 88:202973–83 [Google Scholar]
  48. Dickinson E. 1994. Protein-stabilized emulsions. J. Food Eng. 22:59–74 [Google Scholar]
  49. Dickinson E. 1998. Proteins at interfaces and in emulsions. Stability, rheology and interactions. J. Chem. Soc. Faraday Trans. 94:121657–69 [Google Scholar]
  50. Dickinson E. 2009. Hydrocolloids as emulsifiers and emulsion stabilizers. Food Hydrocoll 23:61473–82 [Google Scholar]
  51. Dickinson E. 2010. Food emulsions and foams: stabilization by particles. Curr. Opin. Colloid Interface Sci. 15:1–240–49 [Google Scholar]
  52. Dickinson E. 2011. Mixed biopolymers at interfaces: competitive adsorption and multilayer structures. Food Hydrocoll 25:81966–83 [Google Scholar]
  53. Dickinson E. 2012. Use of nanoparticles and microparticles in the formation and stabilization of food emulsions. Trends Food Sci. Technol. 24:14–12 [Google Scholar]
  54. Dickinson E, Hong ST. 1994. Surface coverage of β-lactoglobulin at the oil-water interface: influence of protein heat-treatment and various emulsifiers. J. Agric. Food Chem. 42:1602–6 [Google Scholar]
  55. Dickinson E, Matsumura Y. 1991. Time-dependent polymerization of β-lactoglobulin through disulphide bonds at the oil-water interface in emulsions. Int. J. Biol. Macromol. 13:126–30 [Google Scholar]
  56. Dickinson E, Murray BS, Stainsby G. 1988. Coalescence stability of emulsion-sized droplets at a planar oil-water interface and the relationship to protein film surface rheology. J. Chem. Soc. Faraday Trans. 1. 84:3871–83 [Google Scholar]
  57. Dickinson E, Rolfe SE, Dalgleish DG. 1989. Competitive adsorption in oil-in-water emulsions containing α-lactalbumin and β-lactoglobulin. Food Hydrocoll 3:193–203 [Google Scholar]
  58. Dürrenberger MB, Handschin S, Conde-Petit B, Escher F. 2001. Visualization of food structure by confocal laser scanning microscopy (CLSM). LWT Food Science Technol 34:11–17 [Google Scholar]
  59. Dynarowicz-Latka P, Dhanabalan A, Oliveira ON. 2001. Modern physicochemical research on Langmuir monolayers. Adv. Colloid Interface Sci. 91:221–93 [Google Scholar]
  60. Engelhardt K, Lexis M, Gochev G, Konnerth C, Miller R. et al. 2013. pH effects on the molecular structure of β-lactoglobulin modified air-water interfaces and its impact on foam rheology. Langmuir 29:11646–55 [Google Scholar]
  61. Fang Y, Dalgleish DG. 1993. Casein adsorption on the surfaces of oil-in-water emulsions modified by lecithin. Colloids Surf. B 1:357–64 [Google Scholar]
  62. Fang Y, Dalgleish DG. 1996. Competitive adsorption between dioleoylphosphatidylcholine and sodium caseinate on oil−water interfaces. J. Agric. Food Chem. 44:59–64 [Google Scholar]
  63. Felderhof BU. 2006. Effect of surface elasticity on the motion of a droplet in a viscous fluid. J. Chem. Phys. 125:124904 [Google Scholar]
  64. Fenaille F, Parisod V, Tabet JC, Guy PA. 2005. Carbonylation of milk powder proteins as a consequence of processing conditions. Proteomics 5:123097–104 [Google Scholar]
  65. Feng H, Ershov D, Krebs T, Schroen K, Cohen Stuart MA. et al. 2015. Manipulating and quantifying temperature-triggered coalescence with microcentrifugation. Lab Chip 15:188–94 [Google Scholar]
  66. Fernandez-Avila C, Trujillo AJ. 2016. Ultra-high pressure homogenization improves oxidative stability and interfacial properties of soy protein isolate-stabilized emulsions. Food Chem 209:104–13 [Google Scholar]
  67. Ferri JK, Gorevski N, Kotsmar C, Leser ME, Miller R. 2008. Desorption kinetics of surfactants at fluid interfaces by novel coaxial capillary pendant drop experiments. Colloids Surf. A 319:13–20 [Google Scholar]
  68. Fischer P, Erni P. 2007. Emulsion drops in external flow fields - The role of liquid interfaces. Curr. Opin. Colloid Interface Sci. 12:196–205 [Google Scholar]
  69. Fredrick E, Walstra P, Dewettinck K. 2010. Factors governing partial coalescence in oil-in-water emulsions. Adv. Colloid Interface Sci. 153:1–230–42 [Google Scholar]
  70. Gallier S, Acton D, Garg M, Singh H. 2017. Natural and processed milk and oil body emulsions: bioavailability, bioaccessibility and functionality. Food Struct 13:13–23 [Google Scholar]
  71. Gallier S, Tate H, Singh H. 2013. In vitro gastric and intestinal digestion of a walnut oil body dispersion. J. Agric. Food Chem. 61:2410–17 [Google Scholar]
  72. Gallier S, Vocking K, Post JA, Van De Heijning B, Acton D. et al. 2015. A novel infant milk formula concept: mimicking the human milk fat globule structure. Colloids Surf. B 136:329–39 [Google Scholar]
  73. Geerts MEJ, Mienis E, Nikiforidis CV, van der Padt A, van der Goot AJ. 2017. Mildly refined fractions of yellow peas show rich behaviour in thickened oil-in-water emulsions. Innov. Food Sci. Emerg. Technol. 41:251–58 [Google Scholar]
  74. Genot C, Kabri T, Meynier A. 2013. Stabilisation of omega-3 oils and enriched foods using emulsifiers. Food Enrichment with Omega-3 Fatty Acids C Jacobsen, NS Nielsen, AF Horn, AD Sorensen 150–93 Cambridge: Woodhead Publ. [Google Scholar]
  75. Gochev G, Retzlaff I, Aksenenko EV, Fainerman VB, Miller R. 2013. Adsorption isotherm and equation of state for β-lactoglobulin layers at the air/water surface. Colloids Surf. A 422:33–38 [Google Scholar]
  76. Goff HD. 2008. 65 years of ice cream science. Int. Dairy J. 18:7754–58 [Google Scholar]
  77. Golding M, Wooster TJ. 2010. The influence of emulsion structure and stability on lipid digestion. Curr. Opin. Colloid Interface Sci. 15:1–290–101 [Google Scholar]
  78. Graham DE, Phillips MC. 1979. Proteins at liquid interfaces. III. Molecular structures of adsorbed films. J. Colloid Interface Sci. 70:3427–39 [Google Scholar]
  79. Granger C, Barey P, Toutain J, Cansell M. 2005. Direct quantification of protein partitioning in oil-in-water emulsion by front-face fluorescence: avoiding the need for centrifugation. Colloids Surf. B 43:3–4158–62 [Google Scholar]
  80. Gumus CE, Decker EA, McClements DJ. 2017. Formation and stability of w-3 oil emulsion-based delivery systems using plant proteins as emulsifiers: lentil, pea, and faba bean proteins. Food Biophys 12:2186–97 [Google Scholar]
  81. Gunning AP, Kirby AR, Parker ML, Cross KL, Morris VJ. 2010. Utilizing atomic force microscopy in food research. Food Technol 64:32–37 [Google Scholar]
  82. Guzey D, McClements DJ. 2006. Formation, stability and properties of multilayer emulsions for application in the food industry. Adv. Colloid Interface Sci. 128–130:227–48 [Google Scholar]
  83. Hasenhuettl GL, Hartel RW. 2008. Food Emulsifiers and Their Applications New York: Springer
  84. Heins A, McPhail DB, Sokolowski T, Stöckmann H, Schwarz K. 2007. The location of phenolic antioxidants and radicals at interfaces determines their activity. Lipids 42:6573–82 [Google Scholar]
  85. Helfrich W. 1973. Elastic properties of lipid bilayers: theory and possible experiments. Z. Naturforsch. 28:693–703 [Google Scholar]
  86. Ho KKHY, Schroën K, San Martín-González MFS, Berton-Carabin CC. 2017. Physicochemical stability of lycopene-loaded emulsions stabilized by plant or dairy proteins. Food Struct 12:34–42 [Google Scholar]
  87. Horne DS, Leaver J. 1995. Milk proteins on surfaces. Food Hydrocoll 9:291–95 [Google Scholar]
  88. Hu M, McClements DJ, Decker EA. 2003. Lipid oxidation in corn oil-in-water emulsions stabilized by casein, whey protein isolate, and soy protein isolate. J. Agric. Food Chem. 51:61696–700 [Google Scholar]
  89. Hunt JA, Dalgleish DG. 1994. Adsorption behaviour of whey protein isolate and caseinate in soya oil-in-water emulsions. Food Hydrocoll 8:2175–87 [Google Scholar]
  90. Jacobsen C, Let MB, Nielsen NS, Meyer AS. 2008. Antioxidant strategies for preventing oxidative flavour deterioration of foods enriched with n-3 polyunsaturated lipids: a comparative evaluation. Trends Food Sci. Technol. 19:276–93 [Google Scholar]
  91. Jones DB, Middelberg APJ. 2003. Interfacial protein networks and their impact on droplet breakup. AIChE J 49:61533–41 [Google Scholar]
  92. Jourdain LS, Schmitt C, Leser ME, Murray BS, Dickinson E. 2009. Mixed layers of sodium caseinate + dextran sulfate: influence of order of addition to oil-water interface. Langmuir 25:1710026–37 [Google Scholar]
  93. Kaláb M, Allan-Wojtas P, Miller SS. 1995. Microscopy and other imaging techniques in food structure analysis. Trends Food Sci. Technol. 6:177–86 [Google Scholar]
  94. Kalashnikova I, Bizot H, Cathala B, Capron I. 2012. Modulation of cellulose nanocrystals amphiphilic properties to stabilize oil/water interface. Biomacromolecules 13:17471–79 [Google Scholar]
  95. Keerati-u-rai M, Wang Z, Corredig M. 2011. Adsorption of soy protein isolate in oil-in-water emulsions: difference between native and spray dried isolate. J. Am. Oil Chem. Soc. 88:101593–602 [Google Scholar]
  96. Kenmogne-Domguia HB, Meynier A, Viau M, Llamas G, Genot C. 2012. Gastric conditions control both the evolution of the organization of protein-stabilized emulsions and the kinetic of lipolysis during in vitro digestion. Food Funct 3:121302–9 [Google Scholar]
  97. Kerwin BA. 2008. Polysorbates 20 and 80 used in the formulation of protein biotherapeutics: structure and degradation pathways. J. Pharm. Sci. 97:82924–35 [Google Scholar]
  98. Kinsella JE. 1979. Functional properties of soy proteins. J. Am. Oil Chem. Soc. 56:3242–58 [Google Scholar]
  99. Kittipongpittaya K, Chen B, Panya A, McClements DJ, Decker EA. 2012. Prooxidant activity of polar lipid oxidation products in bulk oil and oil-in-water emulsion. J. Am. Oil Chem. Soc. 89:122187–94 [Google Scholar]
  100. Klang V, Matsko NB, Valenta C, Hofer F. 2012. Electron microscopy of nanoemulsions: an essential tool for characterisation and stability assessment. Micron 43:2–385–103 [Google Scholar]
  101. Kong B, Xiong YL, Cui X, Zhao X. 2013. Hydroxyl radical-stressed whey protein isolate: functional and rheological properties. Food Bioprocess Technol 6:1169–76 [Google Scholar]
  102. Kralova I, Sjöblom J. 2009. Surfactants used in food industry: a review. J. Dispers. Sci. Technol. 30:91363–83 [Google Scholar]
  103. Krebs T, Ershov D, Schroen CGPH, Boom RM. 2013. Coalescence and compression in centrifuged emulsions studied with in situ optical microscopy. Soft Matter 9:4026–35 [Google Scholar]
  104. Krebs T, Schroen K, Boom R. 2012. A microfluidic method to study demulsification kinetics. Lab Chip 12:61060–70 [Google Scholar]
  105. Kurukji D, Pichot R, Spyropoulos F, Norton IT. 2013. Interfacial behaviour of sodium stearoyllactylate (SSL) as an oil-in-water pickering emulsion stabiliser. J. Colloid Interface Sci. 409:88–97 [Google Scholar]
  106. Ladjal Ettoumi Y, Berton-Carabin C, Chibane M, Schroën K. 2017. Legume protein isolates for stable acidic emulsions prepared by premix membrane emulsification. Food Biophys 12:1119–28 [Google Scholar]
  107. Laguerre M, Bayrasy C, Lecomte J, Chabi B, Andrew E. et al. 2013. How to boost antioxidants by lipophilization?. Biochimie 95:20–26 [Google Scholar]
  108. Laguerre M, Bayrasy C, Panya A, Weiss J, McClements DJ. et al. 2015. What makes good antioxidants in lipid-based systems? The next theories beyond the polar paradox. Crit. Rev. Food Sci. Nutr. 55:2183–201 [Google Scholar]
  109. Laguerre M, Bily A, Roller M, Birtic S. 2017. Mass transport phenomena in lipid oxidation and antioxidation. Annu. Rev. Food Sci. Technol. 8:391–411 [Google Scholar]
  110. Lam S, Velikov KP, Velev OD. 2014. Pickering stabilization of foams and emulsions with particles of biological origin. Curr. Opin. Colloid Interface Sci. 19:5490–500 [Google Scholar]
  111. Lamorgese A, Mauri R, Sagis LMC. 2017. Modeling soft interface dominated systems: a comparison of phase field and Gibbs dividing surface models. Phys. Rep. 675:1–54 [Google Scholar]
  112. Larson RG. 1999. The Structure and Rheology of Complex Fluids New York: Oxford Univ. Press
  113. Leal-Calderon F, Cansell M. 2012. The design of emulsions and their fate in the body following enteral and parenteral routes. Soft Matter 8:4010213–25 [Google Scholar]
  114. Leal-Calderon F, Schmitt V, Bibette J. 2007. Emulsion Science: Basic Principles New York: Springer [Google Scholar]
  115. Leaver J, Law A, Brechany E. 1999. Covalent modification of emulsified beta-casein resulting from lipid peroxidation. J. Colloid Interface Sci. 210:1207–14 [Google Scholar]
  116. Leermakers FAM, Atkinson PJ, Dickinson E, Horne DS. 1996. Self-consistent-field modeling of adsorbed β-casein: effects of pH and ionic strength on surface coverage and density profile. J. Colloid Interface Sci. 178:681–93 [Google Scholar]
  117. Le Meste M, Closs B, Courthaudon JL, Colas B. 1991. Interactions between milk proteins and lipids: A mobility study. Interactions of Food Proteins RA Barford, N Parris 137–47 Washington, DC: ACS [Google Scholar]
  118. Lesmes U, Sandra S, Decker EA, McClements DJ. 2010. Impact of surface deposition of lactoferrin on physical and chemical stability of omega-3 rich lipid droplets stabilised by caseinate. Food Chem 123:199–106 [Google Scholar]
  119. Li M, Auty MAE, O'Mahony JA, Kelly AL, Brodkorb A. 2016. Covalent labelling of β-casein and its effect on the microstructure and physico-chemical properties of emulsions stabilised by β-casein and whey protein isolate. Food Hydrocoll 61:504–13 [Google Scholar]
  120. Liu F, Tang C-H. 2014. Emulsifying properties of soy protein nanoparticles: Influence of the protein concentration and/or emulsification process. J. Agric. Food Chem. 62:2644–54 [Google Scholar]
  121. Liu Q, Lu Y, Han J, Chen Q, Kong B. 2015. Structure-modification by moderate oxidation in hydroxyl radical-generating systems promote the emulsifying properties of soy protein isolate. Food Struct 6:21–28 [Google Scholar]
  122. Livney YD, Ruimy E, Ye AM, Zhu X, Singh H. 2017. A milkfat globule membrane-inspired approach for encapsulation of emulsion oil droplets. Food Hydrocoll 65:121–29 [Google Scholar]
  123. Lomova MV, Sukhorukov GB, Antipina MN. 2010. Antioxidant coating of micronsize droplets for prevention of lipid peroxidation in oil-in-water emulsion. ACS Appl. Mater. Interfaces 2:123669–76 [Google Scholar]
  124. Lopez C, Cauty C, Rousseau F, Blot M, Margolis A, Famelart M-H. 2017. Lipid droplets coated with milk fat globule membrane fragments: microstructure and functional properties as a function of pH. Food Res. Int. 91:26–37 [Google Scholar]
  125. Losada-Barreiro S, Bravo-Díaz C, Paiva-Martins F, Romsted LS. 2013. Maxima in antioxidant distributions and efficiencies with increasing hydrophobicity of gallic acid and its alkyl esters. The pseudophase model interpretation of the “cutoff effect.”. J. Agric. Food Chem. 61:6533–43 [Google Scholar]
  126. Lucassen-Reynders EH. 1994. Competitive adsorption of emulsifiers. 1. Theory for adsorption of small and large molecules. Colloids Surf. A 91:79–88 [Google Scholar]
  127. Lund MN, Heinonen M, Baron CP, Estévez M. 2011. Protein oxidation in muscle foods: a review. Mol. Nutr. Food Res. 55:183–95 [Google Scholar]
  128. Luo AM, Sagis LMC, Ilg P. 2014. The Landau free energy of hard ellipses obtained from microscopic simulations. J. Chem. Phys. 140:124901 [Google Scholar]
  129. Luo AM, Sagis LMC, Öttinger HC, De Michele C, Ilg P. 2015. Modelling the rheology of anisotropic particles adsorbed on a two-dimensional fluid interface. Soft Matter 11:4383–95 [Google Scholar]
  130. Mackie A, Gunning A, Wilde P, Morris V. 1999. Orogenic displacement of protein from the air/water interface by competitive adsorption. J. Colloid Interface Sci. 210:157–66 [Google Scholar]
  131. Mackie AR, Gunning AP, Ridout MJ, Wilde PJ, Morris VJ. 2001. Orogenic displacement in mixed β-lactoglobulin/β-casein films at the air/water interface. Langmuir 17:6593–98 [Google Scholar]
  132. Mackie AR, Gunning AP, Wilde PJ, Morris VJ. 2000. Orogenic displacement of protein from the oil/water interface. Langmuir 16:2242–47 [Google Scholar]
  133. Magnusson E, Nilsson L, Bergenståhl B. 2016. Effect of the dispersed state of phospholipids on emulsification. Part 1. Phosphatidylcholine. Colloids Surf. A 506:794–803 [Google Scholar]
  134. Malaki Nik A, Langmaid S, Wright AJ. 2012. Nonionic surfactant and interfacial structure impact crystallinity and stability of β-carotene loaded lipid nanodispersions. J. Agric. Food Chem. 60:164126–35 [Google Scholar]
  135. Maldonado-Valderrama J, Gunning AP, Wilde PJ, Morris VJ. 2010. In vitro gastric digestion of interfacial protein structures: visualisation by AFM. Soft Matter 6:194908–15 [Google Scholar]
  136. Maldonado-Valderrama J, Holgado Terriza JA, Torcello-Gómez A, Cabrerizo-Vílchez MA. 2013. In vitro digestion of interfacial protein structures. Soft Matter 9:41043–53 [Google Scholar]
  137. Mancuso JR, McClements DJ, Decker EA. 1999. The effects of surfactant type, pH, and chelators on the oxidation of salmon oil-in-water emulsions. J. Agric. Food Chem. 47:104112–16 [Google Scholar]
  138. McClements DJ. 2004. Protein-stabilized emulsions. Curr. Opin. Colloid Interface Sci. 9:5305–13 [Google Scholar]
  139. McClements DJ. 2005. Food Emulsions: Principles, Practices and Techniques Boca Raton: CRC Press [Google Scholar]
  140. McClements DJ. 2012. Advances in fabrication of emulsions with enhanced functionality using structural design principles. Curr. Opin. Colloid Interface Sci. 17:5235–45 [Google Scholar]
  141. McClements DJ, Bai L, Chung C. 2017. Recent advances in the utilization of natural emulsifiers to form and stabilize emulsions. Annu. Rev. Food Sci. Technol. 8:205–36 [Google Scholar]
  142. McClements DJ, Decker EA. 2000. Lipid oxidation in oil-in-water emulsions: impact of molecular environment on chemical reactions in heterogeneous food systems. J. Food Sci. 65:81270–82 [Google Scholar]
  143. McClements DJ, Decker EA, Park Y. 2008.a Controlling lipid bioavailability through physicochemical and structural approaches. Crit. Rev. Food Sci. Nutr. 49:148–67 [Google Scholar]
  144. McClements DJ, Decker EA, Park Y, Weiss J. 2008.b Designing food structure to control stability, digestion, release and absorption of lipophilic food components. Food Biophys 3:219–28 [Google Scholar]
  145. McClements DJ, Decker EA, Weiss J. 2007. Emulsion-based delivery systems for lipophilic bioactive components. J. Food Sci. 72:8R109–24 [Google Scholar]
  146. McClements DJ, Gumus CE. 2016. Natural emulsifiers—biosurfactants, phospholipids, biopolymers, and colloidal particles: molecular and physicochemical basis of functional performance. Adv. Colloid Interface Sci. 234:3–26 [Google Scholar]
  147. McClements DJ, Li Y. 2010. Structured emulsion-based delivery systems: controlling the digestion and release of lipophilic food components. Adv. Colloid Interface Sci. 159:2213–28 [Google Scholar]
  148. Mei L, McClements DJ, Wu J, Decker EA. 1998. Iron-catalyzed lipid oxidation in emulsion as affected by surfactant, pH and NaCl. Food Chem 61:3307–12 [Google Scholar]
  149. Mikkonen KS, Xu C, Berton-Carabin C, Schroën K. 2016. Spruce galactoglucomannans in rapeseed oil-in-water emulsions: efficient stabilization performance and structural partitioning. Food Hydrocoll 52:615–24 [Google Scholar]
  150. Miller R, Fainerman VB, Leser ME, Michel M. 2004. Kinetics of adsorption of proteins and surfactants. Curr. Opin. Colloid Interface Sci. 9:350–56 [Google Scholar]
  151. Miller R, Fainerman VB, Makievski AV, Krägel J, Grigoriev DO. et al. 2000. Dynamics of protein and mixed protein/surfactant adsorption layers at the water/fluid interface. Adv. Colloid Interface Sci. 86:1–239–82 [Google Scholar]
  152. Miller R, Hofmann A, Hartmann R, Schano KH, Halbig A. 1992. Measuring dynamic surface and interfacial tensions. Adv. Mater. 4:5470 [Google Scholar]
  153. Monahan FJ, McClements DJ, Kinsella JE. 1993. Polymerization of whey proteins in whey protein-stabilized emulsions. J. Agric. Food Chem. 41:1826–29 [Google Scholar]
  154. Monteillet H, Workamp M, Appel J, Kleijn M, Leermakers FAM, Sprakel J. 2014. Ultrastrong anchoring yet barrier-free adsorption of composite microgels at liquid interfaces. Adv. Mater. Interfaces 1300121:1–9 [Google Scholar]
  155. Muijlwijk K, Colijn I, Harsono H, Krebs T, Berton-Carabin C, Schroën K. 2017. Coalescence of protein-stabilised emulsions studied with microfluidics. Food Hydrocoll 70:96–104 [Google Scholar]
  156. Muijlwijk K, Hinderink E, Ershov D, Berton-Carabin C, Schroën K. 2016.a Interfacial tension measured at high expansion rates and within milliseconds using microfluidics. J. Colloid Interface Sci. 470:71–79 [Google Scholar]
  157. Muijlwijk K, Huang W, Vuist J, Berton-Carabin C, Schroën K. 2016.b Convective mass transport dominates surfactant adsorption in a microfluidic Y-junction. Soft Matter 12:9025–29 [Google Scholar]
  158. Mun S, Decker EA, McClements DJ. 2007. Influence of emulsifier type on in vitro digestibility of lipid droplets by pancreatic lipase. Food Res. Int. 40:6770–81 [Google Scholar]
  159. Mun S, Decker EA, Park Y, Weiss J, McClements DJ. 2006. Influence of interfacial composition on in vitro digestibility of emulsified lipids: potential mechanism for chitosan's ability to inhibit fat digestion. Food Biophys 1:121–29 [Google Scholar]
  160. Munk MB, Erichsen HR, Andersen ML. 2014.a The effects of low-molecular-weight emulsifiers in O/W-emulsions on microviscosity of non-solidified oil in fat globules and the mobility of emulsifiers at the globule surfaces. J. Colloid Interface Sci. 419:134–41 [Google Scholar]
  161. Munk MB, Larsen FH, Van Den Berg FWJ, Knudsen JC, Andersen ML. 2014.b Competitive displacement of sodium caseinate by low-molecular-weight emulsifiers and the effects on emulsion texture and rheology. Langmuir 30:8687–96 [Google Scholar]
  162. Murray BS. 2002. Interfacial rheology of food emulsifiers and proteins. Curr. Opin. Colloid Interface Sci. 7:426–31 [Google Scholar]
  163. Murray BS. 2011. Rheological properties of protein films. Curr. Opin. Colloid Interface Sci. 16:127–35 [Google Scholar]
  164. Murray BS, Xu R, Dickinson E. 2009. Brewster angle microscopy of adsorbed protein films at air-water and oil-water interfaces after compression, expansion and heat processing. Food Hydrocoll 23:1190–97 [Google Scholar]
  165. Nakashima T, Shimizu M. 1986. Porous glass from calcium alumino boro-silicate glass. Ceram. Jpn. 21:408 [Google Scholar]
  166. Nazir A, Schroën K, Boom R. 2010. Premix emulsification: a review. J. Membr. Sci. 362:1–21–11 [Google Scholar]
  167. Nielsen NS, Horn AF, Jacobsen C. 2013. Effect of emulsifier type, pH and iron on oxidative stability of 5% fish oil-in-water emulsions. Eur. J. Lipid Sci. Technol. 115:8874–89 [Google Scholar]
  168. Nikiforidis CV, Matsakidou A, Kiosseoglou V. 2014. Composition, properties and potential food applications of natural emulsions and cream materials based on oil bodies. RSC Adv 4:25067–78 [Google Scholar]
  169. Nilsson L, Bergenståhl B. 2007. Emulsification and adsorption properties of hydrophobically modified potato and barley starch. J. Agric. Food Chem. 55:41469–74 [Google Scholar]
  170. Nuchi CD, Hernandez P, McClements DJ, Decker EA. 2002. Ability of lipid hydroperoxides to partition into surfactant micelles and alter lipid oxidation rates in emulsions. J. Agric. Food Chem. 50:195445–49 [Google Scholar]
  171. Nuchi CD, McClements DJ, Decker EA. 2001. Impact of Tween 20 hydroperoxides and iron on the oxidation of methyl linoleate and salmon oil dispersions. J. Agric. Food Chem. 49:114912–16 [Google Scholar]
  172. Obando M, Papastergiadis A, Li S, De Meulenaer B. 2015. Impact of lipid and protein co-oxidation on digestibility of dairy proteins in oil-in-water (O/W) emulsions. J. Agric. Food Chem. 63:9820–30 [Google Scholar]
  173. Oosting A, van Vlies N, Kegler D, Schipper L, Abrahamse-Berkeveld M. et al. 2014. Effect of dietary lipid structure in early postnatal life on mouse adipose tissue development and function in adulthood. Br. J. Nutr. 111:215–26 [Google Scholar]
  174. Öttinger HC. 2005. Beyond Equilibrium Thermodynamics Hoboken, NJ: Wiley
  175. Pan Y, Nitin N. 2015. Effect of layer-by-layer coatings and localization of antioxidant on oxidative stability of a model encapsulated bioactive compound in oil-in-water emulsions. Colloids Surfaces B 135:472–80 [Google Scholar]
  176. Pan Y, Tikekar RV, Nitin N. 2013. Effect of antioxidant properties of lecithin emulsifier on oxidative stability of encapsulated bioactive compounds. Int. J. Pharm. 450:1–2129–37 [Google Scholar]
  177. Patton S, Huston GE. 1986. A method for isolation of milk fat globules. Lipids 21:2170–74 [Google Scholar]
  178. Pawlik A, Kurukji D, Norton I, Spyropoulos F. 2016. Food-grade Pickering emulsions stabilised with solid lipid particles. Food Funct 7:2712–21 [Google Scholar]
  179. Pontani L-L, Haase MF, Raczkowska I, Brujic J. 2013. Immiscible lipids control the morphology of patchy emulsions. Soft Matter 9:7150–57 [Google Scholar]
  180. Pugnaloni LA, Dickinson E, Ettelaie R, Mackie AR, Wilde PJ. 2004. Competitive adsorption of proteins and low-molecular-weight surfactants: computer simulation and microscopic imaging. Adv. Colloid Interface Sci. 107:27–49 [Google Scholar]
  181. Puppo MC, Beaumal V, Chapleau N, Speroni F, de Lamballerie M. et al. 2008. Physicochemical and rheological properties of soybean protein emulsions processed with a combined temperature/high-pressure treatment. Food Hydrocoll 22:1079–89 [Google Scholar]
  182. Ralet M-C, Guéguen J. 2000. Fractionation of potato proteins: Solubility, thermal coagulation and emulsifying properties. LWT Food Sci. Technol. 33:380–87 [Google Scholar]
  183. Rampon V, Genot C, Riaublanc A, Anton M, Axelos MA V, McClements DJ. 2003.a Front-face fluorescence spectroscopy study of globular proteins in emulsions: displacement of BSA by a nonionic surfactant. J. Agric. Food Chem. 51:2482–89 [Google Scholar]
  184. Rampon V, Genot C, Riaublanc A, Anton M, Axelos MA V, McClements DJ. 2003.b Front-face fluorescence spectroscopy study of globular proteins in emulsions: influence of droplet flocculation. J. Agric. Food Chem. 51:92490–95 [Google Scholar]
  185. Rampon V, Lethuaut L, Mouhous-Riou N, Genot C. 2001. Interface characterization and aging of bovine serum albumin stabilized oil-in-water emulsions as revealed by front-surface fluorescence. J. Agric. Food Chem. 49:84046–51 [Google Scholar]
  186. Rampon V, Riaublanc A, Anton M, Genot C, McClements DJ. 2003.c Evidence that homogenization of BSA-stabilized hexadecane-in-water emulsions induces structure modification of the nonadsorbed protein. J. Agric. Food Chem. 51:205900–5 [Google Scholar]
  187. Ravera F, Loglio G, Kovalchuk VI. 2010. Interfacial dilational rheology by oscillating bubble/drop methods. Curr. Opin. Colloid Interface Sci. 15:4217–28 [Google Scholar]
  188. Rayner M, Marku D, Eriksson M, Sjöö M, Dejmek P, Wahlgren M. 2014. Biomass-based particles for the formulation of Pickering type emulsions in food and topical applications. Colloids Surf. A 458:48–62 [Google Scholar]
  189. Rayner M, Sjöö M, Timgren A, Dejmek P. 2012. Quinoa starch granules as stabilizing particles for production of Pickering emulsions. Faraday Discuss 158:139–55 [Google Scholar]
  190. Razumovsky L, Damodaran S. 1999. Thermodynamic incompatibility of proteins at the air-water interface. Colloids Surf. B 13:251–61 [Google Scholar]
  191. Rehage H, Husmann M, Walter A. 2002. From two-dimensional model networks to microcapsules. Rheol. Acta 41:4292–306 [Google Scholar]
  192. Reis P, Holmberg K, Watzke H, Leser ME, Miller R. 2009. Lipases at interfaces: a review. Adv. Colloid Interface Sci. 147–148:237–50 [Google Scholar]
  193. Sagis LMC. 2011. Dynamic properties of interfaces in soft matter: experiments and theory. Rev. Mod. Phys. 83:41367–1403 [Google Scholar]
  194. Sagis LMC, Fischer P. 2014. Nonlinear rheology of complex fluid-fluid interfaces. Curr. Opin. Colloid Interface Sci. 19:6520–29 [Google Scholar]
  195. Sagis LMC, Öttinger HC. 2013. Dynamics of multiphase systems with complex microstructure. I. Development of the governing equations through nonequilibrium thermodynamics. Phys. Rev. E. 88:222149 [Google Scholar]
  196. Salminen H, Heinonen M, Decker EA. 2009. Antioxidant effects of berry phenolics incorporated in oil-in-water emulsions with continuous phase β-lactoglobulin. J. Am. Oil Chem. Soc. 87:4419–28 [Google Scholar]
  197. Salminen H, Helgason T, Kristinsson B, Kristbergsson K, Weiss J. 2013. Formation of solid shell nanoparticles with liquid ω-3 fatty acid core. Food Chem 141:32934–43 [Google Scholar]
  198. Salminen H, Helgason T, Kristinsson B, Kristbergsson K, Weiss J. 2017. Tuning of shell thickness of solid lipid particles impacts the chemical stability of encapsulated w-3 fish oil. J. Colloid Interface Sci. 490:207–16 [Google Scholar]
  199. Sante-Lhoutellier V, Aubry L, Gatellier P. 2007. Effect of oxidation on in vitro digestibility of skeletal muscle myofibrillar proteins. J. Agric. Food Chem. 55:135343–48 [Google Scholar]
  200. Sarkar A, Juan JM, Kolodziejczyk E, Acquistapace S, Donato-Capel L, Wooster TJ. 2015. Impact of protein gel porosity on the digestion of lipid emulsions. J. Agric. Food Chem. 63:8829–37 [Google Scholar]
  201. Schröder A, Berton-Carabin C, Venema P, Cornacchia L. 2017.a Interfacial properties of whey protein and whey protein hydrolysates and their influence on O/W emulsion stability. Food Hydrocoll 73:129–40 [Google Scholar]
  202. Schröder A, Sprakel J, Schroën K, Berton-Carabin CC. 2017.b Tailored microstructure of colloidal lipid particles for Pickering emulsions with tunable properties. Soft Matter 13:3190–98 [Google Scholar]
  203. Schröder V, Schubert H. 1999. Production of emulsions using microporous, ceramic membranes. Colloids Surf. A 152:103–9 [Google Scholar]
  204. Schroën K, Berton-Carabin CC. 2016. Emulsification: established and future technologies. Production, Handling and Characterization of Particulate Materials 25 HG Merkus, GMH Meesters 257–89 Cham, Switz.: Springer Int. Publ. [Google Scholar]
  205. Schuchmann HP, Köhler K, Azad Emin M, Schubert H. 2013. Food process engineering research and innovation in a fast changing world: paradigms/case studies. Advances in Food Process Engineering Research and Applications S Yanniotis 41–59 New York: Springer [Google Scholar]
  206. Schultz S, Wagner G, Urban K, Ulrich J. 2004. High-pressure homogenization as a process for emulsion formation. Chem. Eng. Technol. 27:4361–68 [Google Scholar]
  207. Sengupta T, Damodaran S. 2000. Incompatibility and phase separation in a bovine serum albumin/beta-casein/water ternary film at the air-water interface. J. Colloid Interface Sci. 229:21–28 [Google Scholar]
  208. Shao Y, Tang C-H. 2014. Characteristics and oxidative stability of soy protein-stabilized oil-in-water emulsions: influence of ionic strength and heat pretreatment. Food Hydrocoll 37:149–58 [Google Scholar]
  209. Singh H. 2011. Aspects of milk-protein-stabilised emulsions. Food Hydrocoll 25:81938–44 [Google Scholar]
  210. Singh H, Ye A, Horne D. 2009. Structuring food emulsions in the gastrointestinal tract to modify lipid digestion. Prog. Lipid Res. 48:292–100 [Google Scholar]
  211. Sjöö M, Emek SC, Hall T, Rayner M, Wahlgren M. 2015. Barrier properties of heat treated starch Pickering emulsions. J. Colloid Interface Sci. 450:182–88 [Google Scholar]
  212. Stang M, Karbstein H, Schubert H. 1994. Adsorption kinetics of emulsifiers at oil-water interfaces and their effect on mechanical emulsification. Chem. Eng. Process. 33:307–11 [Google Scholar]
  213. Steegmans MLJ, Warmerdam A, Schroën KGPH, Boom RM. 2009. Dynamic interfacial tension measurements with microfluidic Y-junctions. Langmuir 25:179751–58 [Google Scholar]
  214. Tadros TF. 1994. Fundamental principles of emulsion rheology and their applications. Colloids Surf. A 91:39–55 [Google Scholar]
  215. Tang C-H. 2017. Emulsifying properties of soy proteins: a critical review with emphasis on the role of conformational flexibility. Crit. Rev. Food Sci. Nutr. 57:122636–79 [Google Scholar]
  216. Tavernier I, Wijaya W, Van der Meeren P, Dewettinck K, Patel AR. 2016. Food-grade particles for emulsion stabilization. Trends Food Sci. Technol. 50:159–74 [Google Scholar]
  217. Tcholakova S, Denkov ND, Ivanov IB, Campbell B. 2002. Coalescence in beta-lactoglobulin-stabilized emulsions: effects of protein adsorption and drop size. Langmuir 18:8960–71 [Google Scholar]
  218. Tcholakova S, Denkov ND, Lips A. 2008. Comparison of solid particles, globular proteins and surfactants as emulsifiers. Phys. Chem. Chem. Phys. 10:121608–27 [Google Scholar]
  219. Tcholakova S, Denkov ND, Sidzhakova D, Ivanov IB, Campbell B. 2003. Interrelation between drop size and protein adsorption at various emulsification conditions. Langmuir 19:145640–49 [Google Scholar]
  220. Toikkanen O, Lähteenmäki M, Moisio T, Forssell P, Partanen R, Murtomäki L. 2014. Study of oxygen transfer across milk proteins at an air-water interface with scanning electrochemical microscopy. J. Agric. Food Chem. 62:102284–88 [Google Scholar]
  221. Urban K, Wagner G, Schaffner D, Röglin D, Ulrich J. 2006. Rotor-stator and disc systems for emulsification processes. Chem. Eng. Technol. 29:24–31 [Google Scholar]
  222. van Aken GA. 2003. Competitive adsorption of protein and surfactants in highly concentrated emulsions: effect on coalescence mechanisms. Colloids Surf. A 213:2–3209–19 [Google Scholar]
  223. Villiere A, Viau M, Bronnec I, Moreau N, Genot C. 2005. Oxidative stability of bovine serum albumin- and sodium caseinate-stabilized emulsions depends on metal availability. J. Agric. Food Chem. 53:51514–20 [Google Scholar]
  224. Vladisavljević GT, Schubert H. 2003. Preparation of emulsions with a narrow particle size distribution using microporous α‐alumina membranes. J. Dispers. Sci. Technol. 24:6811–19 [Google Scholar]
  225. Walstra PW. 2003. Physical Chemistry of Foods New York: Marcel Dekker
  226. Wan Z-L, Guo J, Yang X-Q. 2015. Plant protein-based delivery systems for bioactive ingredients in foods. Food Funct 6:2876–89 [Google Scholar]
  227. Wang K, Lu YC, Xu JH, Luo GS. 2009. Determination of dynamic interfacial tension and its effect on droplet formation in the T-shaped microdispersion process. Langmuir 25:2153–58 [Google Scholar]
  228. Waninge R, Walstra P, Bastiaans J, Nieuwenhuijse H, Nylander T. et al. 2005. Competitive adsorption between beta-casein or beta-lactoglobulin and model milk membrane lipids at oil-water interfaces. J. Agric. Food Chem. 53:716–24 [Google Scholar]
  229. Waraho T, McClements DJ, Decker EA. 2011. Mechanisms of lipid oxidation in food dispersions. Trends Food Sci. Technol. 22:13–13 [Google Scholar]
  230. Wierenga PA, Basheva ES, Denkov ND. 2009. Modified capillary cell for foam film studies allowing exchange of the film-forming liquid. Langmuir 25:116035–39 [Google Scholar]
  231. Wilde P, Mackie A, Husband F, Gunning P, Morris V. 2004. Proteins and emulsifiers at liquid interfaces. Adv. Colloid Interface Sci. 108–109:63–71 [Google Scholar]
  232. Wilde PJ. 2000. Interfaces: their role in foam and emulsion behaviour. Curr. Opin. Colloid Interface Sci. 5:176–81 [Google Scholar]
  233. Wilde PJ, Chu BS. 2011. Interfacial & colloidal aspects of lipid digestion. Adv. Colloid Interface Sci. 165:14–22 [Google Scholar]
  234. Won JY, Gochev G, Ulaganathan V, Krägel J, Aksenenko EV. et al. 2017. Mixed adsorption mechanism for the kinetics of BLG interfacial layer formation at the solution/tetradecane interface. Colloids Surf. A 519:146–52 [Google Scholar]
  235. Xu JH, Dong PF, Zhao H, Tostado CP, Luo GS. 2012. The dynamic effects of surfactants on droplet formation in coaxial microfluidic devices. Langmuir 28:9250–58 [Google Scholar]
  236. Yang Y, Leser ME, Sher AA, McClements DJ. 2013. Formation and stability of emulsions using a natural small molecule surfactant: Quillaja saponin (Q-Naturale). Food Hydrocoll 30:589–96 [Google Scholar]
  237. Yano YF. 2012. Kinetics of protein unfolding at interfaces. J. Phys. Condens. Matter 24:1–16 [Google Scholar]
  238. Ye A. 2008. Interfacial composition and stability of emulsions made with mixtures of commercial sodium caseinate and whey protein concentrate. Food Chem 110:4946–52 [Google Scholar]
  239. Yusoff A, Murray BS. 2011. Modified starch granules as particle-stabilizers of oil-in-water emulsions. Food Hydrocoll 25:142–55 [Google Scholar]
  240. Zeeb B, Fischer L, Weiss J. 2011. Cross-linking of interfacial layers affects the salt and temperature stability of multilayered emulsions consisting of fish gelatin and sugar beet pectin. J. Agric. Food Chem. 59:1910546–55 [Google Scholar]
  241. Zhai JLI, Day L, Aguilar MI, Wooster TJ. 2013. Protein folding at emulsion oil/water interfaces. Curr. Opin. Colloid Interface Sci. 18:257–71 [Google Scholar]
  242. Zhang Z, Decker EA, McClements DJ. 2014. Encapsulation, protection, and release of polyunsaturated lipids using biopolymer-based hydrogel particles. Food Res. Int. 64:520–26 [Google Scholar]
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