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纤维素纳米晶稳定Pickering乳液及其环境响应性研究进展

  • 陈媛 ,
  • 张欢 ,
  • 余永 ,
  • 朱瀚昆 ,
  • 王洪霞 ,
  • 付余 ,
  • 马良 ,
  • 张宇昊 ,
  • 戴宏杰
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  • 1(西南大学 食品科学学院,重庆,400715)
    2(软物质材料化学与功能制造重庆市重点实验室, 重庆,400715)
硕士研究生(张宇昊教授和戴宏杰讲师为共同通讯作者,E-mail:zhy1203@163.com;daihjdemo@163.com)

收稿日期: 2020-07-03

  修回日期: 2020-07-21

  网络出版日期: 2021-01-13

基金资助

国家自然科学基金项目(31901683;31972102);国家重点研发计划项目(2016YFD0400200);重庆市基础科学与前沿技术研究项目(cstc2018jcyjA0939);中央高校业务费重点项目(XDJK2019B028)

Research progress of cellulose nanocrystals stabilized Pickering emulsion and its environmental responsiveness

  • CHEN Yuan ,
  • ZHANG Huan ,
  • YU Yong ,
  • ZHU Hankun ,
  • WANG Hongxia ,
  • FU Yu ,
  • MA Liang ,
  • ZHANG Yuhao ,
  • DAI Hongjie
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  • 1(College of Food Science, Southwest University, Chongqing 400715, China)
    2(Chongqing Key Laboratory of Soft-Matter Material Chemistry and Function Manufacturing, Chongqing 400715, China)

Received date: 2020-07-03

  Revised date: 2020-07-21

  Online published: 2021-01-13

摘要

纤维素纳米晶具有来源广、高纵横比、可再生、可降解和生物相容性好等特点,在以固体颗粒为乳化剂的Pickering乳液中受到越来越多的关注。该综述首先简要介绍了纤维素纳米晶稳定的Pickering乳液的制备方法及乳液相关性质,重点介绍了纤维素纳米晶稳定Pickering乳液的影响因素和乳液的环境响应性,以期为纤维素纳米晶在Pickering乳液中应用研究提供参考。

本文引用格式

陈媛 , 张欢 , 余永 , 朱瀚昆 , 王洪霞 , 付余 , 马良 , 张宇昊 , 戴宏杰 . 纤维素纳米晶稳定Pickering乳液及其环境响应性研究进展[J]. 食品与发酵工业, 2020 , 46(24) : 234 -241 . DOI: 10.13995/j.cnki.11-1802/ts.024939

Abstract

Cellulose nanocrystals shows the characteristics of widespread origin, high aspect ratio, renewability, degradability and biocompatibility, which attracting more and more attentions in the application of Pickering emulsions using solid particles as emulsifiers. This review first briefly introduced the preparation method and related properties of the Pickering emulsions stabilized by cellulose nanocrystals. And then it focused on the influencing factors of the cellulose nanocrystals stabilized Pickering emulsions and the environmental responsiveness of the emulsions. This review provides references for the application of cellulose nanocrystals in Pickering emulsions.

参考文献

[1] RAMSDEN W.Separation of solids in the surface-layers of solutions and 'Suspensions′ (Observations on surface-membranes, bubbles, emulsions, and mechanical coagulation).Preliminary Account[J].Proceedings of the Royal Society of London, 1903,72(477-486):156-164.
[2] PICKERING S U CXCVI.Emulsions[J].Journal of the Chemical Society, 1907,91:2 001-2 021.
[3] WU J, MA G H.Recent studies of Pickering emulsions:particles make the difference[J].Small, 2016,12(34):4 633-4 648.
[4] KIM J, COTE L J, KIM F, et al.Graphene oxide sheets at interfaces[J].Journal of the American Chemical Society, 2010,132(23):8 180-8 186.
[5] BON S A, COLVER P J.Pickering miniemulsion polymerization using laponite clay as a stabilizer[J].Langmuir, 2007,23(16):8 316-8 322.
[6] LI X, DE VRIES R.Interfacial stabilization using complexes of plant proteins and polysaccharides[J].Current Opinion in Food Science, 2018,21:51-56.
[7] KASAAI M R.Zein and zein-based nano-materials for food and nutrition applications:A review[J].Trends in Food Science & Technology, 2018,79:184-197.
[8] ZHANG Y, JIANG Y, HAN L, et al.Biodegradable regenerated cellulose-dispersed composites with improved properties via a pickering emulsion process[J].Carbohydrate Polymers, 2018,179:86-92.
[9] TANG C, SPINNEY S, SHI Z, et al.Amphiphilic cellulose nanocrystals for enhanced Pickering emulsion stabilization[J].Langmuir, 2018,34(43):12 897-12 905.
[10] HAAJ S B, THIELEMANS W, MAGNIN A, et al.Starch nanocrystal stabilized pickering emulsion polymerization for nanocomposites with improved performance[J].ACS Applied Materials & Interfaces, 2014,6(11):8 263-8 273.
[11] CALABRESE V, COURTENAY J C, EDLER K J, et al.Pickering emulsions stabilized by naturally derived or biodegradable particles[J].Current Opinion in Green and Sustainable Chemistry, 2018,12:83-90.
[12] 刘仁,鲁鹏,吴敏,等.纳米纤维素在气体阻隔包装材料中的应用进展[J].包装工程,2019,40(7):51-59.
LIU R, LU P, WU M, et al.Application progress of nano cellulose in gas barrier packaging materials[J].Packaging Engineering, 2019,40(7):51-59.
[13] PHANTHONG P, REUBROYCHAROEN P, HAO X, et al.Nanocellulose:Extraction and application[J].plication Carbon Resources Conversion, 2018,1(1):32-43.
[14] DUFRESNE A.Nanocellulose:A new ageless bionanomaterial[J].Materials Today, 2013,16(6):220-227.
[15] TRACHE D, HUSSIN M H, HAAAFIZ M K M, et al.Recent progress in cellulose nanocrystals:Sources and production[J].Nanoscale, 2017,9(5):1 763-1 786.
[16] KALASHNIKOVA I, BIZOT H, CATHALA B, et al.Modulation of cellulose nanocrystals amphiphilic properties to stabilize oil/water interface[J].Biomacromolecules, 2012,13(1):267-275.
[17] BAI L, GRECA L G, XIANG W, et al.Adsorption and assembly of cellulosic and lignin colloids at oil/water interfaces[J].Langmuir:The ACS Journal of Surfaces and Colloids, 2019,35(3):571-588.
[18] RAMISETTY K A, PANDIT A B, GOGATE P R.Ultrasound assisted preparation of emulsion of coconut oil in water:Understanding the effect of operating parameters and comparison of reactor designs[J].Chemical Engineering and Processing:Process Intensification, 2015,88:70-77.
[19] MEIRELLES A A D, COSTA A L R, CUNHA R L.The stabilizing effect of cellulose crystals in O/W emulsions obtained by ultrasound process[J].Food Research International, 2020,128:108 746.
[20] LOW L E, WONG S K, TANG S Y, et al.Production of highly uniform Pickering emulsions by novel high-intensity ultrasonic tubular reactor (HUTR)[J].Ultrasonics Sonochemistry, 2019,54:121-128.
[21] SOGUT E.Active whey protein isolate films including bergamot oil emulsion stabilized by nanocellulose[J].Food Packaging and Shelf Life, 2020,23:100 430.
[22] NI Y, LI J, FAN L.Production of nanocellulose with different length from ginkgo seed shells and applications for oil in water Pickering emulsions[J].International Journal of Biological Macromolecules, 2020,149:617-626.
[23] CHEN Q, LIU T, TANG C.Tuning the stability and microstructure of fine Pickering emulsions stabilized by cellulose nanocrystals[J].Industrial Crops & Products, 2019,141:111 733.
[24] BAI L, LV S, XIANG W, et al.Oil-in-water Pickering emulsions via microfluidization with cellulose nanocrystals:Formation and stability[J].Food Hydrocolloids, 2019,96:699-708.
[25] NIU F, HAN B, FAN J, et al.Characterization of structure and stability of emulsions stabilized with cellulose macro/nano particles[J].Carbohydrate Polymers, 2018,199:314-319.
[26] MIKULCOVA V, BORDES R, KASPARKOVA V.On the preparation and antibacterial activity of emulsions stabilized with nanocellulose particles[J].Food Hydrocolloids, 2016,61:780-792.
[27] PANDEY A, DERAKHSHANDEH M, KEDZIOR S A, et al.Role of interparticle interactions on microstructural and rheological properties of cellulose nanocrystal stabilized emulsions[J].Journal of Colloid and Interface Science, 2018,532:808-818.
[28] KARGAR M, FAYAZMANESH K, ALAVI M, et al.Investigation into the potential ability of Pickering emulsions (food-grade particles) to enhance the oxidative stability of oil-in-water emulsions[J].Journal of Colloid and Interface Science, 2012,366(1):209-215.
[29] VARANASI S, HENZEL L, MENDOZA L, et al.Pickering emulsions electrostatically stabilized by cellulose nanocrystals[J].Frontiers in Chemistry, 2018,6:409.
[30] ANGKURATIPAKORN T, SRIPRAI A, TANTRAWONG S, et al.Fabrication and characterization of rice bran oil-in-water Pickering emulsion stabilized by cellulose nanocrystals[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects, 2017,522:310-319.
[31] TANG J, QUINLAN P J, TAM K C.Stimuli-responsive Pickering emulsions:Recent advances and potential applications[J].Soft Matter, 2015,11(18):3 512-3 529.
[32] LOW L E, TEY B T, ONG B H, et al.Palm olein-in-water Pickering emulsion stabilized by Fe3O4-cellulose nanocrystal nanocomposites and their responses to pH[J].Carbohydrate Polymers, 2017,155:391-399.
[33] TANG J, LEE M F X, ZHANG W, et al.Dual Responsive Pickering emulsion stabilized by poly(2-(dimethylamino)ethyl methacrylate) grafted cellulose nanocrystals[J].Biomacromolecules, 2014,15(8):3 052-3 060.
[34] LIU L, KERR W L, KONG F.Characterization of lipid emulsions during in vitro digestion in the presence of three types of nanocellulose[J].Journal of Colloid And Interface Science, 2019,545:317-329.
[35] BAI L, LV S, XIANG W, et al.Oil-in-water Pickering emulsions via microfluidization with cellulose nanocrystals:In vitro lipid digestion[J].Food Hydrocolloids, 2019,96:709-716.
[36] MURRAY B S.Pickering emulsions for food and drinks[J].Current Opinion in Food Science, 2019,27:57-63.
[37] TANG C, CHEN Y, LUO J, et al.Pickering emulsions stabilized by hydrophobically modified nanocellulose containing various structural characteristics[J].Cellulose, 2019,26(13):7 753-7 767.
[38] DU LE H, LOVEDAY S M, SINGH H, et al.Pickering emulsions stabilised by hydrophobically modified cellulose nanocrystals:Responsiveness to pH and ionic strength[J].Food Hydrocolloids, 2020,99:105 344.
[39] CHEN Q, ZHENG J, XU Y, et al.Surface modification improves fabrication of pickering high internal phase emulsions stabilized by cellulose nanocrystals[J].Food Hydrocolloids, 2018,75:125-130.
[40] MIKULCOVA V, BORDES R, MINARIK A, et al.Pickering oil-in-water emulsions stabilized by carboxylated cellulose nanocrystals: Effect of the pH[J].Food Hydrocolloids, 2018,80:60-67.
[41] CHEN Q, ZHENG J, XU Y, et al.Surface modification improves fabrication of pickering high internal phase emulsions stabilized by cellulose nanocrystals[J].Food Hydrocolloids, 2018,75:125-130.
[42] GONG X, WANG Y, CHEN L.Enhanced emulsifying properties of wood-based cellulose nanocrystals as Pickering emulsion stabilizer[J].Carbohydrate Polymers, 2017,169:295-303.
[43] LI W, JU B, ZHANG S.Novel amphiphilic cellulose nanocrystals for pH-responsive Pickering emulsions[J].Carbohydrate Polymers, 2020,229:115 401.
[44] LOW L E, TEY B T, ONG B H, et al.Unravelling pH-responsive behaviour of Fe3O4-CNCs-stabilized Pickering emulsions under the influence of magnetic field[J].Polymer, 2018,141:93-101.
[45] ZOPPE J O, VENDITTI R A, ROJAS O J.Pickering emulsions stabilized by cellulose nanocrystals grafted with thermo-responsive polymer brushes[J].Journal of Colloid And Interface Science, 2012,369(1):202-209.
[46] WANG W, DU G, LI C, et al.Preparation of cellulose nanocrystals from asparagus (Asparagus officinalis L.) and their applications to palm oil/water Pickering emulsion[J].Carbohydrate Polymers, 2016,151:1-8.
[47] KALASHNIKOVA I, BIZOT H, BERTONCINI P, et al.Cellulosic nanorods of various aspect ratios for oil in water Pickering emulsions[J].Soft Matter, 2013,9(3):952-959.
[48] CHERHAL F, COUSIN F, CAPRON I.Structural description of the interface of Pickering emulsions stabilized by cellulose nanocrystals[J].Biomacromolecules, 2016,17(2):496-502.
[49] KALASHNIKOVA I, BIZOT H, CATHALA B, et al.Modulation of cellulose nanocrystals amphiphilic properties to stabilize oil/water interface[J].Biomacromolecules, 2012,13(1):267-275.
[50] ZHANG H, CHEN Y, WANG S, et al.Extraction and comparison of cellulose nanocrystals from lemon (Citrus limon) seeds using sulfuric acid hydrolysis and oxidation methods[J].Carbohydrate Polymers, 2020,238:116 180.
[51] LIU L, HU Z, SUI X, et al.Effect of counterion choice on the stability of cellulose nanocrystal Pickering emulsions[J].Industrial & Engineering Chemistry Research, 2018,57(21):7 169-7 180.
[52] WEN C, YUAN Q, LIANG H, et al.Preparation and stabilization of d-limonene Pickering emulsions by cellulose nanocrystals[J].Carbohydrate Polymers, 2014,112:695-700.
[53] TANG J, QUINLAN P J, TAM K C.Stimuli-responsive Pickering emulsions:Recent advances and potential applications[J].Soft Matter, 2015,11(18):3 512-3 529.
[54] TANG J, BERRY R M, TAM K C.Stimuli-responsive cellulose nanocrystals for surfactant-free oil harvesting[J].Biomacromolecules, 2016,17(5):1 748-1 756.
[55] 宋玉新,田森林,李英杰,等.环境刺激响应型乳液体系的研究现状[J].化工进展,2017,36(S1):380-387.
SONG Y X, TIAN S L, LI Y J, et al.Research status of environmental stimulus response emulsion system[J].Chemical Progress, 2017,36(S1):380-387.
[56] LOW L E, TEY B T, ONG B H, et al.Palm olein-in-water Pickering emulsion stabilized by Fe3O4-cellulose nanocrystal nanocomposites and their responses to pH[J].Carbohydrate Polymers, 2017,155:391-399.
[57] REN G, ZHENG X, GU H, et al.Temperature and CO2 dual-responsive Pickering emulsions using Jeffamine M2005-modified cellulose nanocrystals[J].Langmuir, 2019,35(42):13 663-13 670.
[58] GLASING J, JESSOP P G, CHAMPAGNE P, et al.Graft-modified cellulose nanocrystals as CO2-switchable Pickering emulsifiers[J].Polymer Chemistry, 2018,9(28):3 864-3 872.
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