纳米颗粒在液相中的分散稳定性研究进展

姚圆圆, 张辉*

化工新型材料 ›› 2023, Vol. 51 ›› Issue (9) : 80 -84.

PDF
化工新型材料 ›› 2023, Vol. 51 ›› Issue (9) : 80-84. DOI: 10.19817/j.cnki.issn1006-3536.2023.09.015
综述与专论

纳米颗粒在液相中的分散稳定性研究进展

    姚圆圆, 张辉*
作者信息 +

Advance in study of the dispersion stability of nanoparticles in liquid phase

  • Yao Yuanyuan, Zhang Hui
Author information +
文章历史 +
PDF

摘要

纳米颗粒具有传统颗粒所不具备的优异性能,但其在液相中的团聚现象严重影响了自身特性,限制了其应用和发展。总结分析了纳米颗粒在液相中的分散过程和稳定机制,重点综述了分散方法、分散稳定性的评价方法及影响因素,并展望了未来的发展方向,为纳米颗粒的应用提供了理论基础,促进纳米技术的发展。

Abstract

Nanoparticles have excellent properties that traditional materials do not have,but the agglomeration in liquid phase seriously affects their characteristics,limiting their application and development.The dispersion process and stability mechanism of nanoparticles in liquid phase were summarized and analyzed,the dispersion methods,evaluation methods of dispersion stability and influencing factors were reviewed,and the future development direction was prospected,which provided a theoretical basis for the application of nanoparticles and promoted the development of nanotechnology.

关键词

纳米颗粒 / 分散方法 / 稳定机制 / 稳定性评价

Key words

nanoparticles / dispersion method / stabilization mechanism / stability evaluation

引用本文

引用格式 ▾
纳米颗粒在液相中的分散稳定性研究进展[J]. 化工新型材料, 2023, 51(9): 80-84 DOI:10.19817/j.cnki.issn1006-3536.2023.09.015

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] Vladimirova Y V,Zadkov V N.Quantum optics in nanostructures[J].Nanomaterials,2021,11(8):1919.
[2] Li H,He Y,Wang C,et al.Tunable thermal and electricity generation enabled by spectrally selective absorption nanoparticles for photovoltaic/thermal applications[J].Applied Energy,2019,236:117-126.
[3] Li D L,Peng H,Liang D Q.Thermal conductivity enhancement of clathrate hydrate with nanoparticles[J].International Journal of Heat and Mass Transfer,2017,104:566-573.
[4] Yu K,Zhang H,Biggs S,et al.The rheology of polyvinylpyrrolidone-coated silica nanoparticles positioned at an air-aqueous interface[J].Journal of Colloid and Interface Science,2018,527:346-355.
[5] Biswal S,Bhaskaram D S,Govindaraj G.Role of graphene oxide in modifying magnetism in α-Fe2O3 nanoparticles:Raman and magnetization studies[J].MaterialsChemistry and Physics,2021,266:124531.
[6] 周细应,李卫红,何亮.纳米颗粒的分散稳定性及其评估方法[J].材料保护,2006(6):51-54,83.
[7] 张振华,郭忠诚.复合镀中纳米粉体分散的研究[J].精细与专用化学品,2007(2):9-13.
[8] Brinker C J,Scherer G W.Sol-gel science:the physics and chemistry of sol-gel processing[M].Academic Press,2013.
[9] Ren J,Song S,Lopez-Valdivieso A,et al.Dispersion of silica fines in water-ethanol suspensions[J].Journal of Colloid and Interface Science,2001,238(2):279-284.
[10] Horn R G.Surface forces and their action in ceramic materials[J].Journal of the American Ceramic Society,1990,73(5):1117-1135.
[11] 许艳华,颜文煅,何惜琴.纳米ZrO2-8% Y2O3水相悬浮液分散稳定性研究[J].表面技术,2021,50(3):206-211,238.
[12] Yu F,Chen Y,Liang X,et al.Dispersion stability of thermal nanofluids[J].Progress in Natural Science:Materials International,2017,27(5):531-542.
[13] 张卉芳.淀粉固结成型工艺制备多孔陶瓷[D].武汉:华中科技大学,2007.
[14] Liu D M.Densification of zirconia from submicron-sized to nano-sized powder particles[J].Journal of Materials Science Letters,1998,17(6):467-469.
[15] Jiang L,Gao L.Effect of Tiron adsorption on the colloidal stability of nano-sized alumina suspension[J].Materials Chemistry and Physics,2003,80(1):157-161.
[16] 马文有,田秋,曹茂盛等.纳米颗粒分散技术研究进展——分散方法与机理(1)[J].中国粉体技术,2002(3):28-31.
[17] 任俊,卢寿慈,唐芳琼.超细粉体在液相中的分散技术与应用[C].中国颗粒学会第六届学术年会暨海峡两岸颗粒技术研讨会论文集(上).[出版者不详],2008:167-169.
[18] 许耀群,李曙光,王娟,等.超声波及分散剂对纳米SiO2/CaCO3/Al2O3颗粒分散特性的影响[J].材料导报,2018,32(S1):300-304.
[19] 路元坤,欧阳平.纳米粒子的分散稳定性研究进展[J].化工新型材料,2021,49(4):262-266.
[20] Pal B,Mallick S S,Pal B.Remarkably improved dispersion stability and thermal conductivity of WO3-H2O suspension by SiO2coating[J].Journal of Nanoscience and Nanotechnology,2018,18(5):3283-3290.
[21] Han W,Wang L,Zhang R,et al.Water-dispersible boron nitride nanospheres with high thermal conductivity for heat-transfer nanofluids[J].European Journal of Inorganic Chemistry,2017,2017(46):5466-5474.
[22] 邹惠静,尹良果.沉淀法制备超细氧化铝粉末过程中的团聚机理和消除办法[J].光谱实验室,2010,27(4):1633-1639.
[23] Ma B G,Jiang Q,Huang J,et al.One-pot in-situ surface modification of silica nanosphere by siloxane-coupled polycarboxylate with improved aqueous dispersion stability[J].Journal of Sol-Gel Science and Technology,2017,83(3):582-589.
[24] Abdullah M,Malik S R,Iqbal M H,et al.Sedimentation and stabilization of nano-fluids with dispersant[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects,2018,554:86-92.
[25] Moreno A,Liu J,Gueret R,et al.Unravelling the hydration barrier of lignin oleate nanoparticles for acid- and base-catalyzed functionalization in dispersion state[J].Angewandte Chemie International Edition,2021,60(38):20897-20905.
[26] Che J,Wang X,Xiao Y,et al.Effect of inorganic-organic composite coating on the dispersion of silicon carbide nanoparticles in non-aqueous medium[J].Nanotechnology,2007,18(13):135706.
[27] 桑琦,周超,李鸿岩,等.pH调节-分散协同作用对纳米TiO2水分散性研究[J].应用化工,2022,51(2):345-348.
[28] Kosmulski M,Mączka E.Zeta potential in dispersions of titania nanoparticles in moderately polar solvents stabilized with anionic surfactants[J].Journal of Molecular Liquids,2022,355:118972.
[29] Fiorati A,Florit F,Mazzei A,et al.Dispersions of zirconia nanoparticles close to the phase boundary of surfactant-free ternary mixtures[J].Langmuir,2021,37(14):4072-4081.
[30] Langevin D,Raspaud E,Mariot S,et al.Towards reproducible measurement of nanoparticle size using dynamic light scattering:important controls and considerations[J].NanoImpact,2018,10:161-167.
[31] Hsieh H Y,Cheng W T.Fabrication and stabilization of oxidized carbon black nanoparticle dispersion in aqueous solution for photothermal conversion enhancement[J].ACS Omega,2021,6(5):3693-3700.
[32] Cacua K,Murshed S M,Pabón E,et al.Dispersion and thermal conductivity of TiO2/water nanofluid[J].Journal of Thermal Analysis and Calorimetry,2020,140(1):109-114.
[33] Machrafi H.Universal relation between the density and the viscosity of dispersions of nanoparticles and stabilized emulsions[J].Nanoscale,2020,12(28):15081-15101.
[34] Rabani R,Saidi M H,Joly L,et al.Enhanced local viscosity around colloidal nanoparticles probed by equilibrium molecular dynamics simulations[J].The Journal of Chemical Physics,2021,155(17):174701.
[35] Javadian S,Motaee A,Sharifi M,et al.Dispersion stability of multi-walled carbon nanotubes in catanionic surfactant mixtures[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects,2017,531:141-149.
[36] Ali N,Teixeira J A,Addali A.A review on nanofluids:fabrication,stability,and thermophysical properties[J].Journal of Nanomaterials,2018,2018:396.
[37] Chamsa-Ard W,Brundavanam S,Fung C C,et al.Nanofluid types,their synthesis,properties and incorporation in direct solar thermal collectors:a review[J].Nanomaterials,2017,7(6):131.
[38] 张笑,宋武林,卢照,等.纳米二氧化钛分散液稳定性的研究进展[J].材料导报,2019,33(S1):16-21.
[39] Jiang L,Gao L,Sun J.Production of aqueous colloidal dispersions of carbon nanotubes[J].Journal of Colloid and Interface Science,2003,260(1):89-94.
[40] Missana T,Adell A.On the applicability of DLVO theory to the prediction of clay colloids stability[J].Journal of Colloid and Interface Science,2000,230(1):150-156.
[41] Popa I,Gillies G,Papastavrou G,et al.Attractive and repulsive electrostatic forces between positively charged latex particles in the presence of anionic linear polyelectrolytes[J].The Journal of Physical Chemistry B,2010,114(9):3170-3177.
[42] Shah T R,Koten H,Ali H M.Performance effecting parameters of hybrid nanofluids[M]//Hybrid Nanofluids for Convection Heat Transfer.Academic Press,2020:179-213.
[43] 李金平,吴疆,梁德青,等.纳米粒子悬浮液中分散剂选择的实验研究[J].兰州理工大学学报,2006(3):63-66.
[44] 徐小娇,刘妮,王玉强,等.纳米流体悬浮液稳定性的最新研究进展[J].流体机械,2012,40(10):46-49,45.
[45] 王补宣,李春辉,彭晓峰.黏度对纳米颗粒悬浮液稳定性的影响[J].上海理工大学学报,2003(3):209-212.

基金资助

中央引导地方科技发展基金项目(2021ZYD0060);西南石油大学科技项目(2021JBGS03);成都国际科技合作基金(2020GH0200069HZ)

AI Summary AI Mindmap
PDF

693

访问

0

被引

导航
相关文章

AI思维导图

/