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2022 | OriginalPaper | Buchkapitel

6. Electrostatic Layer-by-Layer Self-Assembly Method: A Physico-Chemical Perspective

verfasst von : Eduardo Guzmán, Ana Mateos-Maroto, Francisco Ortega, Ramón G. Rubio

Erschienen in: Supramolecular Assemblies Based on Electrostatic Interactions

Verlag: Springer International Publishing

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Abstract

The use of the Layer-by-Layer (LbL) method for the fabrication of structural and functional materials through the alternate deposition of polyelectrolyte bearing opposite charges has undergone a spectacular development due to the numerous avenues that offer for controlling the assembly process by simply tuning some operational parameters or characteristic of the layering molecules. This is only possible by a careful examination of the physicochemical bases underlying the assembly process. This chapter tries to provide a broad physicochemical perspective trying to disentangle some of the most fundamental aspects underlying the exploitation of the LbL electrostatic self-assembly for opening new avenues in the design of novel nanomaterials.

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Literatur
13.
Zurück zum Zitat Decher G, Schlenoff JB (eds) (2003) Multilayer thin films-sequential assembly of nanocomposite materials. Germany Wiley-VCH Verlag, Berlin Decher G, Schlenoff JB (eds) (2003) Multilayer thin films-sequential assembly of nanocomposite materials. Germany Wiley-VCH Verlag, Berlin
14.
Zurück zum Zitat Decher G, Hong JD (1991) Buildup of ultrathin multilayer films by a self-assembly process 2. Consecutive adsorption of anionic and cationic bipolar amphiphiles and polyelectrolytes on charged surfaces. Ber Bunsen-Ges Phys Chem Chem Phys 95:1430–1434. https://doi.org/10.1002/bbpc.19910951122 Decher G, Hong JD (1991) Buildup of ultrathin multilayer films by a self-assembly process 2. Consecutive adsorption of anionic and cationic bipolar amphiphiles and polyelectrolytes on charged surfaces. Ber Bunsen-Ges Phys Chem Chem Phys 95:1430–1434. https://​doi.​org/​10.​1002/​bbpc.​19910951122
15.
16.
20.
Zurück zum Zitat Guzmán E, Cavallo JA, Chuliá-Jordán R, Gómez C, Strumia MC, Ortega F et al (2011) pH-induced changes in the fabrication of multilayers of poly(acrylic acid) and chitosan: fabrication, properties, and tests as a drug storage and delivery system. Langmuir 27:6836–6845. https://doi.org/10.1021/la200522rCrossRefPubMed Guzmán E, Cavallo JA, Chuliá-Jordán R, Gómez C, Strumia MC, Ortega F et al (2011) pH-induced changes in the fabrication of multilayers of poly(acrylic acid) and chitosan: fabrication, properties, and tests as a drug storage and delivery system. Langmuir 27:6836–6845. https://​doi.​org/​10.​1021/​la200522rCrossRefPubMed
33.
37.
43.
Zurück zum Zitat Serizawa T, Hamada K-i, Kitayama T, Fujimoto N, Hatada K, Akashi M (2000) Stepwise stereocomplex assembly of stereoregular poly(methyl methacrylate)s on a substrate. J Am Chem Soc 122(9):1891–1899. https://doi.org/10.1021/ja9913535 Serizawa T, Hamada K-i, Kitayama T, Fujimoto N, Hatada K, Akashi M (2000) Stepwise stereocomplex assembly of stereoregular poly(methyl methacrylate)s on a substrate. J Am Chem Soc 122(9):1891–1899. https://​doi.​org/​10.​1021/​ja9913535
52.
Zurück zum Zitat Caruso F, Donath E, Möhwald H (1998) Influence of polyelectrolyte multilayer coatings on Förster resonance energy transfer between 6-carboxyfluorescein and rhodamine B-labeled particles in aqueous solution. J Phys Chem B 102:2011–2016. https://doi.org/10.1021/jp980198yCrossRef Caruso F, Donath E, Möhwald H (1998) Influence of polyelectrolyte multilayer coatings on Förster resonance energy transfer between 6-carboxyfluorescein and rhodamine B-labeled particles in aqueous solution. J Phys Chem B 102:2011–2016. https://​doi.​org/​10.​1021/​jp980198yCrossRef
64.
Zurück zum Zitat Chandrawati R, Hosta-Rigau L, Vanderstraaten D, Lokuliyana SA, Städler B, Albericio F et al (2010) Engineering advanced capsosomes: maximizing the number of subcompartments, cargo retention, and temperature-triggered reaction. ACS Nano 4:1351–1361. https://doi.org/10.1021/nn901843j Chandrawati R, Hosta-Rigau L, Vanderstraaten D, Lokuliyana SA, Städler B, Albericio F et al (2010) Engineering advanced capsosomes: maximizing the number of subcompartments, cargo retention, and temperature-triggered reaction. ACS Nano 4:1351–1361. https://​doi.​org/​10.​1021/​nn901843j
69.
Zurück zum Zitat Lvov Y, Essler F, Decher G (1993) Combination of polycation/polyanion self-assembly and Langmuir-Blodgett transfer for the construction of superlattice films. J Phys Chem 97:13773–13777CrossRef Lvov Y, Essler F, Decher G (1993) Combination of polycation/polyanion self-assembly and Langmuir-Blodgett transfer for the construction of superlattice films. J Phys Chem 97:13773–13777CrossRef
71.
Zurück zum Zitat Richardson JJ, Cui J, Björnmalm M, Braunger JA, Ejima H, Caruso F (2016) Innovation in layer-by-layer assembly. Chem Rev 116:14828–14867CrossRefPubMed Richardson JJ, Cui J, Björnmalm M, Braunger JA, Ejima H, Caruso F (2016) Innovation in layer-by-layer assembly. Chem Rev 116:14828–14867CrossRefPubMed
72.
Zurück zum Zitat Hammond PT (2011) Engineering materials layer-by-layer: Challenges and opportunities in multilayer assembly. AIChE J 57:2928–2940CrossRef Hammond PT (2011) Engineering materials layer-by-layer: Challenges and opportunities in multilayer assembly. AIChE J 57:2928–2940CrossRef
73.
Zurück zum Zitat Xiang Y, Lu S, Jiang SP (2012) Layer-by-layer self-assembly in the development of electrochemical energy conversion and storage devices from fuel cells to supercapacitors. Chem Soc Rev 41:7291–7321CrossRefPubMed Xiang Y, Lu S, Jiang SP (2012) Layer-by-layer self-assembly in the development of electrochemical energy conversion and storage devices from fuel cells to supercapacitors. Chem Soc Rev 41:7291–7321CrossRefPubMed
74.
Zurück zum Zitat Michel M, Toniazzo V, Ruch D, Ball V (2012) Deposition mechanisms in layer-by-layer or step-by-step deposition methods: from elastic and impermeable films to soft membranes with ion exchange properties. ISRN Mat Sci 2012:701695 Michel M, Toniazzo V, Ruch D, Ball V (2012) Deposition mechanisms in layer-by-layer or step-by-step deposition methods: from elastic and impermeable films to soft membranes with ion exchange properties. ISRN Mat Sci 2012:701695
75.
Zurück zum Zitat Iler RK (1966) Multilayers of colloidal particles. J Colloid Interface Sci 21:569–594CrossRef Iler RK (1966) Multilayers of colloidal particles. J Colloid Interface Sci 21:569–594CrossRef
76.
Zurück zum Zitat Mateos-Maroto A, Abelenda-Núñez I, Ortega F, Rubio RG, Guzmán E (2021) Polyelectrolyte multilayers on soft colloidal nanosurfaces: a new life for the layer-by-layer method. Polymers 13:1221PubMedCentralCrossRefPubMed Mateos-Maroto A, Abelenda-Núñez I, Ortega F, Rubio RG, Guzmán E (2021) Polyelectrolyte multilayers on soft colloidal nanosurfaces: a new life for the layer-by-layer method. Polymers 13:1221PubMedCentralCrossRefPubMed
77.
Zurück zum Zitat Shim BS, Podsiadlo P, Lilly DG, Agarwal A, Lee J, Tang Z et al (2007) Nanostructured thin films made by Dewetting method of layer-by-layer assembly. Nano Lett 7:3266–3273CrossRefPubMed Shim BS, Podsiadlo P, Lilly DG, Agarwal A, Lee J, Tang Z et al (2007) Nanostructured thin films made by Dewetting method of layer-by-layer assembly. Nano Lett 7:3266–3273CrossRefPubMed
78.
Zurück zum Zitat Richardson JJ, Björnmalm M, Caruso F (2015) Technology-driven layer-by-layer assembly of nanofilms. Science 348 Richardson JJ, Björnmalm M, Caruso F (2015) Technology-driven layer-by-layer assembly of nanofilms. Science 348
79.
Zurück zum Zitat Fu Y, Li S-J, Xu J, Yang M, Zhang J-D, Jiao Y-H et al (2011) Facile and efficient approach to speed up layer-by-layer assembly: dipping in agitated solutions. Langmuir 27:672–677CrossRefPubMed Fu Y, Li S-J, Xu J, Yang M, Zhang J-D, Jiao Y-H et al (2011) Facile and efficient approach to speed up layer-by-layer assembly: dipping in agitated solutions. Langmuir 27:672–677CrossRefPubMed
80.
Zurück zum Zitat Li Y, Wang X, Sun J (2012) Layer-by-layer assembly for rapid fabrication of thick polymeric films. Chem Soc Rev 41:5998–6009CrossRefPubMed Li Y, Wang X, Sun J (2012) Layer-by-layer assembly for rapid fabrication of thick polymeric films. Chem Soc Rev 41:5998–6009CrossRefPubMed
81.
Zurück zum Zitat Lee S-S, Hong J-D, Kim CH, Kim K, Koo JP, Lee K-B (2001) Layer-by-layer deposited multilayer assemblies of ionene-type polyelectrolytes based on the spin-coating method. Macromolecules 34:5358–5360CrossRef Lee S-S, Hong J-D, Kim CH, Kim K, Koo JP, Lee K-B (2001) Layer-by-layer deposited multilayer assemblies of ionene-type polyelectrolytes based on the spin-coating method. Macromolecules 34:5358–5360CrossRef
82.
Zurück zum Zitat Espinosa-Dzib A, Chen J, Zavgorodnya O, Kozlovskaya V, Liang X, Kharlampieva E (2015) Tuning assembly and enzymatic degradation of silk/poly(N-vinylcaprolactam) multilayers via molecular weight and hydrophobicity. Soft Matter 11:5133–5145CrossRefPubMed Espinosa-Dzib A, Chen J, Zavgorodnya O, Kozlovskaya V, Liang X, Kharlampieva E (2015) Tuning assembly and enzymatic degradation of silk/poly(N-vinylcaprolactam) multilayers via molecular weight and hydrophobicity. Soft Matter 11:5133–5145CrossRefPubMed
83.
Zurück zum Zitat Izquierdo A, Ono SS, Voegel JC, Schaaf P, Decher G (2005) Dipping versus spraying: exploring the deposition conditions for speeding up layer-by-layer assembly. Langmuir 21:7558–7567CrossRefPubMed Izquierdo A, Ono SS, Voegel JC, Schaaf P, Decher G (2005) Dipping versus spraying: exploring the deposition conditions for speeding up layer-by-layer assembly. Langmuir 21:7558–7567CrossRefPubMed
84.
Zurück zum Zitat Kolansinska M, Krastev R, Gutberlet T, Warszynski P (2009) Layer-by-layer deposition of polyelectrolytes. Dipping versus spraying. Langmuir 25:1224–1232 Kolansinska M, Krastev R, Gutberlet T, Warszynski P (2009) Layer-by-layer deposition of polyelectrolytes. Dipping versus spraying. Langmuir 25:1224–1232
85.
Zurück zum Zitat Guzmán E, Rubio RG, Ortega F (2020) A closer physico-chemical look to the layer-by-layer electrostatic self-assembly of polyelectrolyte multilayers. Adv Colloid Interface Sci 282:102197 Guzmán E, Rubio RG, Ortega F (2020) A closer physico-chemical look to the layer-by-layer electrostatic self-assembly of polyelectrolyte multilayers. Adv Colloid Interface Sci 282:102197
90.
98.
Zurück zum Zitat Lefort M, Boulmedais F, Jierry L, Gonthier E, Voegel JC, Hemmerl J et al (2011) Simultaneous spray coating of interacting species: general rules governing the poly(styrene sulfonate)/poly(allylamine) system. Langmuir 27:4653–4660CrossRefPubMed Lefort M, Boulmedais F, Jierry L, Gonthier E, Voegel JC, Hemmerl J et al (2011) Simultaneous spray coating of interacting species: general rules governing the poly(styrene sulfonate)/poly(allylamine) system. Langmuir 27:4653–4660CrossRefPubMed
105.
Zurück zum Zitat Shi L, Lu Y, Sun J, Zhang J, Sun C, Liu J et al (2003) Site-Selective lateral multilayer assembly of bienzyme with polyelectrolyte on ITO electrode based on electric field-induced directly layer-by-layer deposition. Biomacromol 4:1161–1167. https://doi.org/10.1021/bm030003eCrossRef Shi L, Lu Y, Sun J, Zhang J, Sun C, Liu J et al (2003) Site-Selective lateral multilayer assembly of bienzyme with polyelectrolyte on ITO electrode based on electric field-induced directly layer-by-layer deposition. Biomacromol 4:1161–1167. https://​doi.​org/​10.​1021/​bm030003eCrossRef
111.
Zurück zum Zitat Mu B, Liu P, Du P, Dong Y, Lu C (2011) Magnetic-targeted pH-responsive drug delivery system via layer-by-layer self-assembly of polyelectrolytes onto drug-containing emulsion droplets and its controlled release. J Polymer Sci A Polymer Chem 49:1969–1976. https://doi.org/10.1002/pola.24623CrossRef Mu B, Liu P, Du P, Dong Y, Lu C (2011) Magnetic-targeted pH-responsive drug delivery system via layer-by-layer self-assembly of polyelectrolytes onto drug-containing emulsion droplets and its controlled release. J Polymer Sci A Polymer Chem 49:1969–1976. https://​doi.​org/​10.​1002/​pola.​24623CrossRef
113.
Zurück zum Zitat Caruso F, Caruso RA, Möhwald H (1998) Nanoengineering of inorganic and hybrid hollow spheres by colloidal templating. Science 282:1111–1114CrossRefPubMed Caruso F, Caruso RA, Möhwald H (1998) Nanoengineering of inorganic and hybrid hollow spheres by colloidal templating. Science 282:1111–1114CrossRefPubMed
114.
Zurück zum Zitat Bertrand P, Jonas A, Laschewsky A, Legras R (2000) Ultrathin polymer coatings by complexation of polyelectrolytes at interfaces: suitable materials, structure and properties. Macromol Rapid Commun 21:319–348CrossRef Bertrand P, Jonas A, Laschewsky A, Legras R (2000) Ultrathin polymer coatings by complexation of polyelectrolytes at interfaces: suitable materials, structure and properties. Macromol Rapid Commun 21:319–348CrossRef
115.
Zurück zum Zitat Yan Y, Björnmalm M, Caruso F (2014) Assembly of layer-by-layer particles and their interactions with biological systems. Chem Mat 26:452–460CrossRef Yan Y, Björnmalm M, Caruso F (2014) Assembly of layer-by-layer particles and their interactions with biological systems. Chem Mat 26:452–460CrossRef
116.
Zurück zum Zitat Donath E, Walther D, Shilov VN, Knippel E, Budde A, Lowack K et al (1997) Nonlinear hairy layer theory of electrophoretic fingerprinting applied to consecutive layer by layer polyelectrolyte adsorption onto charged polystyrene latex particles. Langmuir 13:5294–5305CrossRef Donath E, Walther D, Shilov VN, Knippel E, Budde A, Lowack K et al (1997) Nonlinear hairy layer theory of electrophoretic fingerprinting applied to consecutive layer by layer polyelectrolyte adsorption onto charged polystyrene latex particles. Langmuir 13:5294–5305CrossRef
117.
Zurück zum Zitat Sukhorukov GB, Donath E, Davis S, Lichtenfeld H, Caruso F, Popov VI et al (1998) Stepwise polyelectrolyte assembly on particle surfaces: a novel approach to colloid design. Polym Adv Technol 9:759–767CrossRef Sukhorukov GB, Donath E, Davis S, Lichtenfeld H, Caruso F, Popov VI et al (1998) Stepwise polyelectrolyte assembly on particle surfaces: a novel approach to colloid design. Polym Adv Technol 9:759–767CrossRef
118.
Zurück zum Zitat Caruso F, Lichtenfeld H, Giersig M, Möhwald H (1998) Electrostatic self-assembly of silica nanoparticle−polyelectrolyte multilayers on polystyrene latex particles. J Am Chem Soc 120(33):8523–8524CrossRef Caruso F, Lichtenfeld H, Giersig M, Möhwald H (1998) Electrostatic self-assembly of silica nanoparticle−polyelectrolyte multilayers on polystyrene latex particles. J Am Chem Soc 120(33):8523–8524CrossRef
119.
Zurück zum Zitat Bagaria HG, Wong MS (2011) Polyamine-salt aggregate assembly of capsules as responsive drug delivery vehicles. J Mat Chem 21:9454–9466CrossRef Bagaria HG, Wong MS (2011) Polyamine-salt aggregate assembly of capsules as responsive drug delivery vehicles. J Mat Chem 21:9454–9466CrossRef
120.
Zurück zum Zitat Tong W, Gao C (2008) Multilayer microcapsules with tailored structures for bio-related applications. J Mat Chem 18:3799–3812CrossRef Tong W, Gao C (2008) Multilayer microcapsules with tailored structures for bio-related applications. J Mat Chem 18:3799–3812CrossRef
121.
Zurück zum Zitat Voigt A, Lichtenfeld H, Sukhorukov GB, Zastrow H, Donath E, Baumler H et al (1999) Membrane filtration for microencapsulation and microcapsules fabrication by layer-by-layer polyelectrolyte adsorption. Ind Eng Chem Res 38:4037–4043CrossRef Voigt A, Lichtenfeld H, Sukhorukov GB, Zastrow H, Donath E, Baumler H et al (1999) Membrane filtration for microencapsulation and microcapsules fabrication by layer-by-layer polyelectrolyte adsorption. Ind Eng Chem Res 38:4037–4043CrossRef
122.
Zurück zum Zitat Nagaraja AT, You Y-H, Choi J-W, Hwang J-H, Meissner KE, McShane MJ (2016) Layer-by-layer modification of high surface curvature nanoparticles with weak polyelectrolytes using a multiphase solvent precipitation process. J Colloid Interface Sci 466:432–441CrossRefPubMed Nagaraja AT, You Y-H, Choi J-W, Hwang J-H, Meissner KE, McShane MJ (2016) Layer-by-layer modification of high surface curvature nanoparticles with weak polyelectrolytes using a multiphase solvent precipitation process. J Colloid Interface Sci 466:432–441CrossRefPubMed
123.
Zurück zum Zitat Elizarova IS, Luckham PF (2016) Fabrication of polyelectrolyte multilayered nano-capsules using a continuous layer-by-layer approach. J Colloid Interface Sci 470:92–99CrossRefPubMed Elizarova IS, Luckham PF (2016) Fabrication of polyelectrolyte multilayered nano-capsules using a continuous layer-by-layer approach. J Colloid Interface Sci 470:92–99CrossRefPubMed
124.
Zurück zum Zitat Mu B, Liu P, Du P, Dong Y, Lu C (2011) Magnetic-targeted pH-responsive drug delivery system via layer-by-layer self-assembly of polyelectrolytes onto drug-containing emulsion droplets and its controlled release. J Polym Sci A: Polym Chem 49:1969–1976CrossRef Mu B, Liu P, Du P, Dong Y, Lu C (2011) Magnetic-targeted pH-responsive drug delivery system via layer-by-layer self-assembly of polyelectrolytes onto drug-containing emulsion droplets and its controlled release. J Polym Sci A: Polym Chem 49:1969–1976CrossRef
125.
Zurück zum Zitat Wilson R, Spiller DG, Prior IA, Bhatt R, Hutchinson A (2007) Magnetic microspheres encoded with photoluminescent quantum dots for multiplexed detection. J Mat Chem 17:4400–4406CrossRef Wilson R, Spiller DG, Prior IA, Bhatt R, Hutchinson A (2007) Magnetic microspheres encoded with photoluminescent quantum dots for multiplexed detection. J Mat Chem 17:4400–4406CrossRef
126.
127.
Zurück zum Zitat Hoogeveen NG, Cohen Stuart MA, Fleer GJ, Böhmer MR (1996) Formation and stability of multilayers of polyelectrolytes. Langmuir 12:3675–3681CrossRef Hoogeveen NG, Cohen Stuart MA, Fleer GJ, Böhmer MR (1996) Formation and stability of multilayers of polyelectrolytes. Langmuir 12:3675–3681CrossRef
128.
Zurück zum Zitat Bantchev G, Lu Z, Lvov Y (2009) Layer-by-layer nanoshell assembly on colloids through simplified washless process. J Nanosci Nanotechnol 9:396–403CrossRefPubMed Bantchev G, Lu Z, Lvov Y (2009) Layer-by-layer nanoshell assembly on colloids through simplified washless process. J Nanosci Nanotechnol 9:396–403CrossRefPubMed
129.
Zurück zum Zitat Szczepanowicz K, Dronka-Góra D, Para G, Warszyński P (2010) Encapsulation of liquid cores by layer-by-layer adsorption of polyelectrolytes. J Microencapsul 27:198–204CrossRefPubMed Szczepanowicz K, Dronka-Góra D, Para G, Warszyński P (2010) Encapsulation of liquid cores by layer-by-layer adsorption of polyelectrolytes. J Microencapsul 27:198–204CrossRefPubMed
130.
Zurück zum Zitat Grigoriev DO, Bukreeva T, Möhwald H, Shchukin DG (2008) New method for fabrication of loaded micro- and nanocontainers: emulsion encapsulation by polyelectrolyte layer-by-layer deposition on the liquid core. Langmuir 24:999–1004CrossRefPubMed Grigoriev DO, Bukreeva T, Möhwald H, Shchukin DG (2008) New method for fabrication of loaded micro- and nanocontainers: emulsion encapsulation by polyelectrolyte layer-by-layer deposition on the liquid core. Langmuir 24:999–1004CrossRefPubMed
131.
Zurück zum Zitat Thanasukarn P, Pongsawatmanit R, McClements D (2006) Utilization of layer-by-layer interfacial deposition technique to improve freeze–thaw stability of oil-in-water emulsions. Food Res Int 39:721–729CrossRef Thanasukarn P, Pongsawatmanit R, McClements D (2006) Utilization of layer-by-layer interfacial deposition technique to improve freeze–thaw stability of oil-in-water emulsions. Food Res Int 39:721–729CrossRef
132.
Zurück zum Zitat Li J, Stöver HDH (2010) Pickering emulsion templated layer-by-layer assembly for making microcapsules. Langmuir 26:15554–15560CrossRefPubMed Li J, Stöver HDH (2010) Pickering emulsion templated layer-by-layer assembly for making microcapsules. Langmuir 26:15554–15560CrossRefPubMed
133.
Zurück zum Zitat Rossier-Miranda FJ, Schroën K, Boom R (2012) Microcapsule production by an hybrid colloidosome-layer-by-layer technique. Food Hydrocolloids 27:119–125CrossRef Rossier-Miranda FJ, Schroën K, Boom R (2012) Microcapsule production by an hybrid colloidosome-layer-by-layer technique. Food Hydrocolloids 27:119–125CrossRef
134.
Zurück zum Zitat Liu H, Gu X, Hu M, Hu Y, Wang C (2014) Facile fabrication of nanocomposite microcapsules by combining layer-by-layer self-assembly and Pickering emulsion templating. RSC Adv 4:16751–16758CrossRef Liu H, Gu X, Hu M, Hu Y, Wang C (2014) Facile fabrication of nanocomposite microcapsules by combining layer-by-layer self-assembly and Pickering emulsion templating. RSC Adv 4:16751–16758CrossRef
135.
Zurück zum Zitat Guzmán E, Ruano M, Ortega F, Rubio RG (2014) Stratified interpolyelectrolyte complexes: fabrication, structure and properties. In: Visakh PM, Bayraktar O, Picó GA (eds) Polyelectrolytes. Springer International Publishing, Cham (Switzerland), pp 299–347 Guzmán E, Ruano M, Ortega F, Rubio RG (2014) Stratified interpolyelectrolyte complexes: fabrication, structure and properties. In: Visakh PM, Bayraktar O, Picó GA (eds) Polyelectrolytes. Springer International Publishing, Cham (Switzerland), pp 299–347
136.
Zurück zum Zitat Richardson JJ, Liang K, Kempe K, Ejima H, Cui J, Caruso F (2013) Immersive polymer assembly on immobilized particles for automated capsule preparation. Adv Mat 25:6874–6878CrossRef Richardson JJ, Liang K, Kempe K, Ejima H, Cui J, Caruso F (2013) Immersive polymer assembly on immobilized particles for automated capsule preparation. Adv Mat 25:6874–6878CrossRef
137.
Zurück zum Zitat Wang Y, Zhou J, Guo X, Hu Q, Qin C, Liu H et al (2017) Layer-by-layer assembled biopolymer microcapsule with separate layer cavities generated by gas-liquid microfluidic approach. Mater Sci Eng C Mater Biol Appl 81:13–19CrossRefPubMed Wang Y, Zhou J, Guo X, Hu Q, Qin C, Liu H et al (2017) Layer-by-layer assembled biopolymer microcapsule with separate layer cavities generated by gas-liquid microfluidic approach. Mater Sci Eng C Mater Biol Appl 81:13–19CrossRefPubMed
138.
Zurück zum Zitat Wang Y, Liu Y, Cheng Y, Kim E, Rubloff GW, Bentley WE et al (2011) Coupling electrodeposition with layer-by-layer assembly to address proteins within microfluidic channels. Adv Mater 23:5817–5821CrossRefPubMed Wang Y, Liu Y, Cheng Y, Kim E, Rubloff GW, Bentley WE et al (2011) Coupling electrodeposition with layer-by-layer assembly to address proteins within microfluidic channels. Adv Mater 23:5817–5821CrossRefPubMed
139.
Zurück zum Zitat Lee UN, Day JH, Haack AJ, Bretherton RC, Lu W, DeForest CA et al (2020) Layer-by-layer fabrication of 3D hydrogel structures using open microfluidics. Lab Chip 20:525–536PubMedCentralCrossRefPubMed Lee UN, Day JH, Haack AJ, Bretherton RC, Lu W, DeForest CA et al (2020) Layer-by-layer fabrication of 3D hydrogel structures using open microfluidics. Lab Chip 20:525–536PubMedCentralCrossRefPubMed
140.
Zurück zum Zitat Alkekhia D, Hammond PT, Shukla A (2020) Layer-by-layer biomaterials for drug delivery. Ann Rev Biomed Eng. 22:1–24CrossRef Alkekhia D, Hammond PT, Shukla A (2020) Layer-by-layer biomaterials for drug delivery. Ann Rev Biomed Eng. 22:1–24CrossRef
141.
Zurück zum Zitat Björnmalm M, Yan Y, Caruso F (2014) Engineering and evaluating drug delivery particles in microfluidic devices. J Control Rel 190:139–149CrossRef Björnmalm M, Yan Y, Caruso F (2014) Engineering and evaluating drug delivery particles in microfluidic devices. J Control Rel 190:139–149CrossRef
142.
Zurück zum Zitat Priest C, Quinn A, Postma A, Zelikin AN, Ralston J, Caruso F (2008) Microfluidic polymer multilayer adsorption on liquid crystal droplets for microcapsule synthesis. Lab Chip 8:2182–2187CrossRefPubMed Priest C, Quinn A, Postma A, Zelikin AN, Ralston J, Caruso F (2008) Microfluidic polymer multilayer adsorption on liquid crystal droplets for microcapsule synthesis. Lab Chip 8:2182–2187CrossRefPubMed
144.
Zurück zum Zitat Mets JM, Wilson JT, Cui W, Chaikof EL (2013) An automated process for layer-by-layer assembly of polyelectrolyte multilayer thin films on viable cell aggregates. Adv Healthc Mater 2:266–270CrossRefPubMed Mets JM, Wilson JT, Cui W, Chaikof EL (2013) An automated process for layer-by-layer assembly of polyelectrolyte multilayer thin films on viable cell aggregates. Adv Healthc Mater 2:266–270CrossRefPubMed
145.
Zurück zum Zitat Kantak C, Beyer S, Yobas L, Bansal T, Trau D (2011) A ‘microfluidic pinball’ for on-chip generation of layer-by-layer polyelectrolyte microcapsules. Lab Chip 11:1030–1035CrossRefPubMed Kantak C, Beyer S, Yobas L, Bansal T, Trau D (2011) A ‘microfluidic pinball’ for on-chip generation of layer-by-layer polyelectrolyte microcapsules. Lab Chip 11:1030–1035CrossRefPubMed
146.
Zurück zum Zitat Raman N, Lee M-R, Palecek SP, Lynn DM (2014) Polymer multilayers loaded with antifungal β-peptides kill planktonic Candida albicans and reduce formation of fungal biofilms on the surfaces of flexible catheter tubes. J Control Release 191:54–62PubMedCentralCrossRefPubMed Raman N, Lee M-R, Palecek SP, Lynn DM (2014) Polymer multilayers loaded with antifungal β-peptides kill planktonic Candida albicans and reduce formation of fungal biofilms on the surfaces of flexible catheter tubes. J Control Release 191:54–62PubMedCentralCrossRefPubMed
147.
Zurück zum Zitat Madaboosi N, Uhlig K, Jäger MS, Möhwald H, Duschl C, Volodkin DV (2012) Microfluidics as a tool to understand the build-up mechanism of exponential-like growing films. Macromol Rapid Comm 33:1775–1779CrossRef Madaboosi N, Uhlig K, Jäger MS, Möhwald H, Duschl C, Volodkin DV (2012) Microfluidics as a tool to understand the build-up mechanism of exponential-like growing films. Macromol Rapid Comm 33:1775–1779CrossRef
148.
Zurück zum Zitat Kim H-J, Lee K, Kumar S, Kim J (2005) Dynamic sequential layer-by-layer deposition method for fast and region-selective multilayer thin film fabrication. Langmuir 18:8532–8538CrossRef Kim H-J, Lee K, Kumar S, Kim J (2005) Dynamic sequential layer-by-layer deposition method for fast and region-selective multilayer thin film fabrication. Langmuir 18:8532–8538CrossRef
149.
Zurück zum Zitat Richardson JJ, Teng D, Björnmalm M, Gunawan ST, Guo J, Cui J et al (2014) Fluidized bed layer-by-layer microcapsule formation. Langmuir 30:10028–10034CrossRefPubMed Richardson JJ, Teng D, Björnmalm M, Gunawan ST, Guo J, Cui J et al (2014) Fluidized bed layer-by-layer microcapsule formation. Langmuir 30:10028–10034CrossRefPubMed
150.
Zurück zum Zitat Noi KF, Roozmand A, Björnmalm M, Richardson JJ, Franks GV, Caruso F (2015) Assembly-controlled permeability of layer-by-layer polymeric microcapsules using a tapered fluidized bed. ACS Appl Mater Interfaces 7(50):27940–27947CrossRefPubMed Noi KF, Roozmand A, Björnmalm M, Richardson JJ, Franks GV, Caruso F (2015) Assembly-controlled permeability of layer-by-layer polymeric microcapsules using a tapered fluidized bed. ACS Appl Mater Interfaces 7(50):27940–27947CrossRefPubMed
151.
Zurück zum Zitat Johansson E, Blomberg E, Lingström R, Wägberg L (2009) Adhesive interaction between polyelectrolyte multilayers of polyallylamine hydrochloride and polyacrylic acid studied using atomic force microscopy and surface force apparatus. Langmuir 25:2887–2894CrossRefPubMed Johansson E, Blomberg E, Lingström R, Wägberg L (2009) Adhesive interaction between polyelectrolyte multilayers of polyallylamine hydrochloride and polyacrylic acid studied using atomic force microscopy and surface force apparatus. Langmuir 25:2887–2894CrossRefPubMed
152.
Zurück zum Zitat Guzmán E, Maestro A, Llamas S, Álvarez-Rodríguez J, Ortega F, Maroto-Valiente Á et al (2016) 3D solid supported inter-polyelectrolyte complexes obtained by the alternate deposition of poly(diallyldimethylammonium chloride) and poly(sodium 4-styrenesulfonate). Beilstein J Nanotech 7:197–208CrossRef Guzmán E, Maestro A, Llamas S, Álvarez-Rodríguez J, Ortega F, Maroto-Valiente Á et al (2016) 3D solid supported inter-polyelectrolyte complexes obtained by the alternate deposition of poly(diallyldimethylammonium chloride) and poly(sodium 4-styrenesulfonate). Beilstein J Nanotech 7:197–208CrossRef
153.
Zurück zum Zitat Guzmán E, Ritacco H, Rubio JEF, Rubio RG, Ortega F (2009) Salt-induced changes in the growth of polyelectrolyte layers of poly(diallyl-dimethylammonium chloride) and poly(4-styrene sulfonate of sodium). Soft Matter 5:2130–2142CrossRef Guzmán E, Ritacco H, Rubio JEF, Rubio RG, Ortega F (2009) Salt-induced changes in the growth of polyelectrolyte layers of poly(diallyl-dimethylammonium chloride) and poly(4-styrene sulfonate of sodium). Soft Matter 5:2130–2142CrossRef
154.
Zurück zum Zitat Schlenoff JB, Dubas ST (2001) Mechanism of polyelectrolyte multilayer growth: charge overcompensation and distribution. Macromolecules 34:592–598CrossRef Schlenoff JB, Dubas ST (2001) Mechanism of polyelectrolyte multilayer growth: charge overcompensation and distribution. Macromolecules 34:592–598CrossRef
155.
Zurück zum Zitat Dubas ST, Schlenoff JB (1999) Factors controlling the growth of polyelectrolyte multilayers. Macromolecules 32:8153–8160CrossRef Dubas ST, Schlenoff JB (1999) Factors controlling the growth of polyelectrolyte multilayers. Macromolecules 32:8153–8160CrossRef
156.
Zurück zum Zitat Picart C, Lavalle P, Hubert P, Cuisinier FJG, Decher G, Schaaf P et al (2001) Buildup mechanism for poly(L-lysine)/hyaluronic acid films onto a solid surface. Langmuir 17:7414–7424CrossRef Picart C, Lavalle P, Hubert P, Cuisinier FJG, Decher G, Schaaf P et al (2001) Buildup mechanism for poly(L-lysine)/hyaluronic acid films onto a solid surface. Langmuir 17:7414–7424CrossRef
157.
Zurück zum Zitat Lavalle P, Gergely C, Cuisinier FJG, Decher G, Schaaf P, Voegel JC et al (2002) Comparison of the structure of polyelectrolyte multilayer films exhibiting a linear and an exponential growth regime: an in situ atomic force microscopy study. Macromolecules 35:4458–4465CrossRef Lavalle P, Gergely C, Cuisinier FJG, Decher G, Schaaf P, Voegel JC et al (2002) Comparison of the structure of polyelectrolyte multilayer films exhibiting a linear and an exponential growth regime: an in situ atomic force microscopy study. Macromolecules 35:4458–4465CrossRef
158.
Zurück zum Zitat Schneider A, Richert L, Francius G, Voegel J-C, Picart C (2007) Elasticity, biodegradability and cell adhesive properties of chitosan/hyaluronan multilayer films. Biomed Mater 2:S45–S51CrossRefPubMed Schneider A, Richert L, Francius G, Voegel J-C, Picart C (2007) Elasticity, biodegradability and cell adhesive properties of chitosan/hyaluronan multilayer films. Biomed Mater 2:S45–S51CrossRefPubMed
159.
Zurück zum Zitat Cini N, Tulun T, Decher G, Ball V (2010) Step-by-step assembly of self-patterning polyelectrolyte films violating (almost) all rules of layer-by-layer deposition. J Am Chem Soc 132 8264–8265 Cini N, Tulun T, Decher G, Ball V (2010) Step-by-step assembly of self-patterning polyelectrolyte films violating (almost) all rules of layer-by-layer deposition. J Am Chem Soc 132 8264–8265
160.
Zurück zum Zitat Cini N, Tulun T, Blanck C, Toniazzo V, Ruch D, Decher G et al (2012) Slow complexation dynamics between linear short polyphosphates and polyallylamines: analogies with ‘“layer-by-layer”’ deposition. Phys Chem Chem Phys 14:3048–3056CrossRefPubMed Cini N, Tulun T, Blanck C, Toniazzo V, Ruch D, Decher G et al (2012) Slow complexation dynamics between linear short polyphosphates and polyallylamines: analogies with ‘“layer-by-layer”’ deposition. Phys Chem Chem Phys 14:3048–3056CrossRefPubMed
161.
Zurück zum Zitat Elbert DL, Herbert CB, Hubbel JA (1999) Thin polymer layers formed by polyelectrolyte multilayer techniques on biological surfaces. Langmuir 15:5355–5362CrossRef Elbert DL, Herbert CB, Hubbel JA (1999) Thin polymer layers formed by polyelectrolyte multilayer techniques on biological surfaces. Langmuir 15:5355–5362CrossRef
162.
Zurück zum Zitat Subbotin AV, Semenov AN (2021) The structure of polyelectrolyte complex coacervates and multilayers. Macromolecules 54:1314–1328CrossRef Subbotin AV, Semenov AN (2021) The structure of polyelectrolyte complex coacervates and multilayers. Macromolecules 54:1314–1328CrossRef
163.
Zurück zum Zitat Guzmán E, Fernández-Peña L, Ortega F, Rubio RG (2020) Equilibrium and kinetically-trapped aggregates in polyelectrolyte-oppositely charged surfactant mixtures. Curr Opin Colloid Interface Sci 48:91–108CrossRef Guzmán E, Fernández-Peña L, Ortega F, Rubio RG (2020) Equilibrium and kinetically-trapped aggregates in polyelectrolyte-oppositely charged surfactant mixtures. Curr Opin Colloid Interface Sci 48:91–108CrossRef
164.
Zurück zum Zitat Llamas S, Guzmán E, Baghdadli N, Ortega F, Cazeneuve C, Rubio RG et al (2016) Adsorption of poly(diallyldimethylammonium chloride)—sodium methyl-cocoyl-taurate complexes onto solid surfaces. Colloids Surf A 505:150–157CrossRef Llamas S, Guzmán E, Baghdadli N, Ortega F, Cazeneuve C, Rubio RG et al (2016) Adsorption of poly(diallyldimethylammonium chloride)—sodium methyl-cocoyl-taurate complexes onto solid surfaces. Colloids Surf A 505:150–157CrossRef
165.
Zurück zum Zitat Tang K, Besseling NAM (2016) Formation of polyelectrolyte multilayers: ionic strengths and growth regimes. Soft Matter 12:1032–1040CrossRefPubMed Tang K, Besseling NAM (2016) Formation of polyelectrolyte multilayers: ionic strengths and growth regimes. Soft Matter 12:1032–1040CrossRefPubMed
166.
Zurück zum Zitat Xu L, Pristinski D, Zhuk A, Stoddart C, Ankner JF, Sukhishvili SA (2012) Linear versus exponential growth of weak polyelectrolyte multilayers: correlation with polyelectrolyte complexes. Macromolecules 45:3892–3901CrossRef Xu L, Pristinski D, Zhuk A, Stoddart C, Ankner JF, Sukhishvili SA (2012) Linear versus exponential growth of weak polyelectrolyte multilayers: correlation with polyelectrolyte complexes. Macromolecules 45:3892–3901CrossRef
167.
Zurück zum Zitat Lavalle P, Picart C, Mutterer J, Gergely C, Reiss H, Voegel J-C et al (2003) Modeling the buildup of polyelectrolyte multilayer films having exponential growth. J Phys Chem B 108:635–648CrossRef Lavalle P, Picart C, Mutterer J, Gergely C, Reiss H, Voegel J-C et al (2003) Modeling the buildup of polyelectrolyte multilayer films having exponential growth. J Phys Chem B 108:635–648CrossRef
168.
Zurück zum Zitat Picart C, Mutterer J, Richert L, Luo Y, Prestwich GD, Schaaf P et al (2002) Molecular basis for the explanation of the exponential growth of polyelectrolyte multilayers. Proc Nat Acad Sci USA 99:12531–12535PubMedCentralCrossRefPubMed Picart C, Mutterer J, Richert L, Luo Y, Prestwich GD, Schaaf P et al (2002) Molecular basis for the explanation of the exponential growth of polyelectrolyte multilayers. Proc Nat Acad Sci USA 99:12531–12535PubMedCentralCrossRefPubMed
169.
Zurück zum Zitat Jourdainne L, Lecuyer S, Arntz Y, Picart C, Schaaf P, Senger B, et al (2008) Dynamics of poly(l-lysine) in hyaluronic acid/poly(l-lysine) multilayer films studied by fluorescence recovery after pattern photobleaching. Langmuir 24:7842–7847 Jourdainne L, Lecuyer S, Arntz Y, Picart C, Schaaf P, Senger B, et al (2008) Dynamics of poly(l-lysine) in hyaluronic acid/poly(l-lysine) multilayer films studied by fluorescence recovery after pattern photobleaching. Langmuir 24:7842–7847
170.
Zurück zum Zitat Sustr D, Hlaváček A, Duschl C, Volodkin D (2018) Multi-fractional analysis of molecular diffusion in polymer multilayers by FRAP: a new simulation-based approach. J Phys Chem B 122(3):1323–1333CrossRefPubMed Sustr D, Hlaváček A, Duschl C, Volodkin D (2018) Multi-fractional analysis of molecular diffusion in polymer multilayers by FRAP: a new simulation-based approach. J Phys Chem B 122(3):1323–1333CrossRefPubMed
171.
Zurück zum Zitat Hoda N, Larson RG (2009) Modeling the buildup of exponentially growing polyelectrolyte multilayer films. J Phys Chem B 113:4232–4241CrossRefPubMed Hoda N, Larson RG (2009) Modeling the buildup of exponentially growing polyelectrolyte multilayer films. J Phys Chem B 113:4232–4241CrossRefPubMed
172.
Zurück zum Zitat Guzmán E, Ortega F, Rubio RG (2016) Comment on “Formation of polyelectrolyte multilayers: ionic strengths and growth regimes” by K Tang and A. M. Besseling. Soft Matter 12:1032 (12:8460–8463) Guzmán E, Ortega F, Rubio RG (2016) Comment on “Formation of polyelectrolyte multilayers: ionic strengths and growth regimes” by K Tang and A. M. Besseling. Soft Matter 12:1032 (12:8460–8463)
173.
Zurück zum Zitat Yuan W, Weng G-M, Lipton J, Li CM, Van Tassel PR, Taylor AD (2020) Weak polyelectrolyte-based multilayers via layer-by-layer assembly: approaches, properties, and applications. Adv Colloid Interface Sci 282:102200 Yuan W, Weng G-M, Lipton J, Li CM, Van Tassel PR, Taylor AD (2020) Weak polyelectrolyte-based multilayers via layer-by-layer assembly: approaches, properties, and applications. Adv Colloid Interface Sci 282:102200
174.
Zurück zum Zitat Guzmán E, Ritacco HA, Ortega F, Rubio RG (2012) Growth of polyelectrolyte layers formed by poly(4-styrenesulfonate sodium salt) and two different polycations: new insights from study of adsorption kinetics. J Phys Chem C 116:15474–15483CrossRef Guzmán E, Ritacco HA, Ortega F, Rubio RG (2012) Growth of polyelectrolyte layers formed by poly(4-styrenesulfonate sodium salt) and two different polycations: new insights from study of adsorption kinetics. J Phys Chem C 116:15474–15483CrossRef
175.
Zurück zum Zitat Guzmán E, Ritacco H, Ortega F, Rubio RG (2011) Evidence of the influence of adsorption kinetics on the internal reorganization of polyelectrolyte multilayers. Colloids Surf A 384:274–281CrossRef Guzmán E, Ritacco H, Ortega F, Rubio RG (2011) Evidence of the influence of adsorption kinetics on the internal reorganization of polyelectrolyte multilayers. Colloids Surf A 384:274–281CrossRef
176.
Zurück zum Zitat McAloney RA, Sinyor M, Dudnik V, Goh MC (2001) Atomic force microscopy studies of salt effects on polyelectrolyte multilayer film morphology. Langmuir 17:6655–6663CrossRef McAloney RA, Sinyor M, Dudnik V, Goh MC (2001) Atomic force microscopy studies of salt effects on polyelectrolyte multilayer film morphology. Langmuir 17:6655–6663CrossRef
177.
Zurück zum Zitat Haynie DT, Cho E, Waduge P (2011) “In and out diffusion” hypothesis of exponential multilayer film buildup revisited. Langmuir 27:5700–5704CrossRefPubMed Haynie DT, Cho E, Waduge P (2011) “In and out diffusion” hypothesis of exponential multilayer film buildup revisited. Langmuir 27:5700–5704CrossRefPubMed
178.
Zurück zum Zitat Hernandez-Montelongo J, Nascimento VF, Hernández-Montelongo R, Beppu MM, Cotta MA (2020) Fractal analysis of the formation process and morphologies of hyaluronan/chitosan nanofilms in layer-by-layer assembly. Polymer 191:122283 Hernandez-Montelongo J, Nascimento VF, Hernández-Montelongo R, Beppu MM, Cotta MA (2020) Fractal analysis of the formation process and morphologies of hyaluronan/chitosan nanofilms in layer-by-layer assembly. Polymer 191:122283
179.
Zurück zum Zitat Naas C, Scheler U, Lappan U (2021) Influence of pH on the growth and the local dynamics of polyelectrolyte multilayers. Macromolecules 54:1043–1051CrossRef Naas C, Scheler U, Lappan U (2021) Influence of pH on the growth and the local dynamics of polyelectrolyte multilayers. Macromolecules 54:1043–1051CrossRef
180.
Zurück zum Zitat Selin V, Ankner JF, Sukhishvili SA (2017) Nonlinear layer-by-layer films: effects of chain diffusivity on film structure and swelling. Macromolecules 50(16):6192–6201CrossRef Selin V, Ankner JF, Sukhishvili SA (2017) Nonlinear layer-by-layer films: effects of chain diffusivity on film structure and swelling. Macromolecules 50(16):6192–6201CrossRef
181.
Zurück zum Zitat Joanny JF (1999) Polyelectrolyte adsorption and charge inversion. Eur Phys J B 117–122 Joanny JF (1999) Polyelectrolyte adsorption and charge inversion. Eur Phys J B 117–122
182.
Zurück zum Zitat Berndt P, Kurihara K, Kunitake T (1992) Adsorption of poly(styrenesulfonate) onto an ammonium monolayer on mica: a surface forces study. Langmuir 8:2486–2490CrossRef Berndt P, Kurihara K, Kunitake T (1992) Adsorption of poly(styrenesulfonate) onto an ammonium monolayer on mica: a surface forces study. Langmuir 8:2486–2490CrossRef
183.
Zurück zum Zitat Schwarz S, Eichhorn KJ, Wischerhoff E, Laschewsky A (1999) Polyelectrolyte adsorption onto planar surfaces: a study by streaming potential and ellipsometry measurements. Colloids Surf A 159:491–501CrossRef Schwarz S, Eichhorn KJ, Wischerhoff E, Laschewsky A (1999) Polyelectrolyte adsorption onto planar surfaces: a study by streaming potential and ellipsometry measurements. Colloids Surf A 159:491–501CrossRef
184.
Zurück zum Zitat Ringwald C, Ball V (2015) Shear induced changes in the streaming potential of polyelectrolyte multilayer films. Colloids Surf A 464:41–45CrossRef Ringwald C, Ball V (2015) Shear induced changes in the streaming potential of polyelectrolyte multilayer films. Colloids Surf A 464:41–45CrossRef
185.
Zurück zum Zitat Ladam G, Schaad P, Voegel JC, Schaaf P, Decher G, Cuisinier F (2000) In situ determination of the structural properties of initially deposited polyelectrolyte multilayers. Langmuir 16:1249–1255CrossRef Ladam G, Schaad P, Voegel JC, Schaaf P, Decher G, Cuisinier F (2000) In situ determination of the structural properties of initially deposited polyelectrolyte multilayers. Langmuir 16:1249–1255CrossRef
186.
Zurück zum Zitat Adamczyk Z, Zembala M, Kolasińska M, Warszyński P (2007) Characterization of polyelectrolyte multilayers on mica and oxidized titanium by streaming potential and wetting angle measurements. Colloids Surf A 302:455–460CrossRef Adamczyk Z, Zembala M, Kolasińska M, Warszyński P (2007) Characterization of polyelectrolyte multilayers on mica and oxidized titanium by streaming potential and wetting angle measurements. Colloids Surf A 302:455–460CrossRef
187.
Zurück zum Zitat Ferriz-Mañas M, Schlenoff JB (2014) Zeta potential of polyelectrolyte multilayers using the spinning disk method. Langmuir 30:8776–8783CrossRefPubMed Ferriz-Mañas M, Schlenoff JB (2014) Zeta potential of polyelectrolyte multilayers using the spinning disk method. Langmuir 30:8776–8783CrossRefPubMed
188.
Zurück zum Zitat Fares HM, Schlenoff JB (2017) Equilibrium overcompensation in polyelectrolyte complexes. Macromolecules 50:3968–3978CrossRef Fares HM, Schlenoff JB (2017) Equilibrium overcompensation in polyelectrolyte complexes. Macromolecules 50:3968–3978CrossRef
189.
Zurück zum Zitat von Klitzing R, Moehwald H (1995) Proton concentration profile in ultrathin polyelectrolyte films. Langmuir 11:3554–3559CrossRef von Klitzing R, Moehwald H (1995) Proton concentration profile in ultrathin polyelectrolyte films. Langmuir 11:3554–3559CrossRef
190.
Zurück zum Zitat Fernández-Peña L, Guzmán E, Ortega F, Bureau L, Leonforte F, Velasco D et al (2021) Physico-chemical study of polymer mixtures formed by a polycation and a zwitterionic copolymer in aqueous solution and upon adsorption onto negatively charged surfaces. Polymer 217:123442 Fernández-Peña L, Guzmán E, Ortega F, Bureau L, Leonforte F, Velasco D et al (2021) Physico-chemical study of polymer mixtures formed by a polycation and a zwitterionic copolymer in aqueous solution and upon adsorption onto negatively charged surfaces. Polymer 217:123442
191.
Zurück zum Zitat Rmaile HH, Schlenoff JB (2002) “Internal pKa’s” in polyelectrolyte multilayers: coupling protons and salt. Langmuir 18:8263–8265CrossRef Rmaile HH, Schlenoff JB (2002) “Internal pKa’s” in polyelectrolyte multilayers: coupling protons and salt. Langmuir 18:8263–8265CrossRef
192.
Zurück zum Zitat Lourenço JMC, Ribeiro PA, Botelho do Rego AM, Raposo M (2007) Counterions in layer-by-layer films—influence of the drying process. J Colloid Interface Sci. 313:26–33 Lourenço JMC, Ribeiro PA, Botelho do Rego AM, Raposo M (2007) Counterions in layer-by-layer films—influence of the drying process. J Colloid Interface Sci. 313:26–33
193.
Zurück zum Zitat Lourenço JMC, Ribeiro PA, Botelho do Rego AM, Braz Fernandes FM, Moutinho AMC, Raposo M (2004) Counterions in poly(allylamine hydrochloride) and poly(styrene sulfonate) layer-by-layer films. Langmuir 20:8103–8109 Lourenço JMC, Ribeiro PA, Botelho do Rego AM, Braz Fernandes FM, Moutinho AMC, Raposo M (2004) Counterions in poly(allylamine hydrochloride) and poly(styrene sulfonate) layer-by-layer films. Langmuir 20:8103–8109
194.
Zurück zum Zitat Llamas S, Guzmán E, Ortega F, Rubio RG (2020) Adsorption of mixtures of a Pegylated lipid with anionic and Zwitterionic surfactants at solid/liquid. Colloids Interfaces 4:47CrossRef Llamas S, Guzmán E, Ortega F, Rubio RG (2020) Adsorption of mixtures of a Pegylated lipid with anionic and Zwitterionic surfactants at solid/liquid. Colloids Interfaces 4:47CrossRef
195.
Zurück zum Zitat Ghostine RA, Markarian MZ, Schlenoff JB (2013) Asymmetric growth in polyelectrolyte multilayers. J Am Chem Soc 135:7636–7646CrossRefPubMed Ghostine RA, Markarian MZ, Schlenoff JB (2013) Asymmetric growth in polyelectrolyte multilayers. J Am Chem Soc 135:7636–7646CrossRefPubMed
196.
Zurück zum Zitat Lehaf AM, Hariri HH, Schlenoff JB (2012) Homogeneity, modulus, and viscoelasticity of polyelectrolyte multilayers by nanoindentation: refining the buildup mechanism. Langmuir 28:6348–6355PubMedCentralCrossRefPubMed Lehaf AM, Hariri HH, Schlenoff JB (2012) Homogeneity, modulus, and viscoelasticity of polyelectrolyte multilayers by nanoindentation: refining the buildup mechanism. Langmuir 28:6348–6355PubMedCentralCrossRefPubMed
197.
Zurück zum Zitat Ghostine RA, Jisr RM, Lehaf A, Schlenoff JB (2013) Roughness and salt annealing in a polyelectrolyte multilayer. Langmuir 11,742−11,750 Ghostine RA, Jisr RM, Lehaf A, Schlenoff JB (2013) Roughness and salt annealing in a polyelectrolyte multilayer. Langmuir 11,742−11,750
198.
Zurück zum Zitat Volodkin D, von Klitzing R (2014) Competing mechanisms in polyelectrolyte multilayer formation and swelling: Polycation–polyanion pairing versus polyelectrolyte–ion pairing. Curr Opin Colloid Interface Sci 19:25–31 Volodkin D, von Klitzing R (2014) Competing mechanisms in polyelectrolyte multilayer formation and swelling: Polycation–polyanion pairing versus polyelectrolyte–ion pairing. Curr Opin Colloid Interface Sci 19:25–31
199.
Zurück zum Zitat Guzmán E, Ortega F, Prolongo MG, Starov VM, Rubio RG (2011) Influence of the molecular architecture on the adsorption onto solid surfaces: comb-like polymers. Phys Chem Chem Phys 13:16416–16423CrossRefPubMed Guzmán E, Ortega F, Prolongo MG, Starov VM, Rubio RG (2011) Influence of the molecular architecture on the adsorption onto solid surfaces: comb-like polymers. Phys Chem Chem Phys 13:16416–16423CrossRefPubMed
200.
Zurück zum Zitat Maestro A, Jones D, Sánchez de Rojas Candela C, Guzman E, Duits MHG, Cicuta P (2018) Tuning interfacial properties and processes by controlling the rheology and structure of poly(n-isopropylacrylamide) particles at air/water interfaces. Langmuir 34:7067–7076 Maestro A, Jones D, Sánchez de Rojas Candela C, Guzman E, Duits MHG, Cicuta P (2018) Tuning interfacial properties and processes by controlling the rheology and structure of poly(n-isopropylacrylamide) particles at air/water interfaces. Langmuir 34:7067–7076
201.
Zurück zum Zitat Llamas S, Mendoza AJ, Guzmán E, Ortega F, Rubio RG (2013) Salt effects on the air/solution interfacial properties of PEO-containing copolymers: equilibrium, adsorption kinetics and surface rheological behavior. J Colloid Interface Sci 400:49–58CrossRefPubMed Llamas S, Mendoza AJ, Guzmán E, Ortega F, Rubio RG (2013) Salt effects on the air/solution interfacial properties of PEO-containing copolymers: equilibrium, adsorption kinetics and surface rheological behavior. J Colloid Interface Sci 400:49–58CrossRefPubMed
202.
Zurück zum Zitat Guzmán E, Ortega F, Baghdadli N, Cazeneuve C, Luengo GS, Rubio RG (2011) Adsorption of conditioning polymers on solid substrates with different charge density. ACS Appl Mat Interfaces. 3:3181–3188CrossRef Guzmán E, Ortega F, Baghdadli N, Cazeneuve C, Luengo GS, Rubio RG (2011) Adsorption of conditioning polymers on solid substrates with different charge density. ACS Appl Mat Interfaces. 3:3181–3188CrossRef
203.
Zurück zum Zitat Guzmán E, Ortega F, Baghdadli N, Luengo GS, Rubio RG (2011) Effect of the molecular structure on the adsorption of conditioning polyelectrolytes on solid substrates. Colloids Surf A 375:209–218CrossRef Guzmán E, Ortega F, Baghdadli N, Luengo GS, Rubio RG (2011) Effect of the molecular structure on the adsorption of conditioning polyelectrolytes on solid substrates. Colloids Surf A 375:209–218CrossRef
204.
Zurück zum Zitat Kotov NA (1999) Layer-by-layer self-assembly: the contribution of hydrophobic interactions. Nanostr Mat 12:789–796CrossRef Kotov NA (1999) Layer-by-layer self-assembly: the contribution of hydrophobic interactions. Nanostr Mat 12:789–796CrossRef
205.
Zurück zum Zitat Guzmán E, Ritacco H, Rubio JEF, Rubio RG, Ortega F (2009) Salt-induced changes in the growth of polyelectrolyte layers of poly(diallyldimethylammoniumchloride) and poly(4-styrene sulfonate of sodium). Soft Matter 5:2130–2142. https://doi.org/10.1039/B901193ECrossRef Guzmán E, Ritacco H, Rubio JEF, Rubio RG, Ortega F (2009) Salt-induced changes in the growth of polyelectrolyte layers of poly(diallyldimethylammoniumchloride) and poly(4-styrene sulfonate of sodium). Soft Matter 5:2130–2142. https://​doi.​org/​10.​1039/​B901193ECrossRef
206.
Zurück zum Zitat Fares HM, Schlenoff JB (2017) Equilibrium Overcompensation in Polyelectrolyte Complexes. Macromolecules 50(10):3968–3978CrossRef Fares HM, Schlenoff JB (2017) Equilibrium Overcompensation in Polyelectrolyte Complexes. Macromolecules 50(10):3968–3978CrossRef
208.
211.
Zurück zum Zitat Kharlampieva E, Kozlovskaya V, Chan J, Ankner JF, Tsukruk VV (2009) Spin-assisted layer-by-layer assembly: variation of stratification as studied with neutron reflectivity. Langmuir 25:14,017–14,024. https://doi.org/10.1021/la9014042 Kharlampieva E, Kozlovskaya V, Chan J, Ankner JF, Tsukruk VV (2009) Spin-assisted layer-by-layer assembly: variation of stratification as studied with neutron reflectivity. Langmuir 25:14,017–14,024. https://​doi.​org/​10.​1021/​la9014042
212.
Zurück zum Zitat Holmberg K, Jönsson B, Kronberg B, Lindman B (2002) Surfactants and polymers in aqueous solution. Wiley, Chichester, United KingdomCrossRef Holmberg K, Jönsson B, Kronberg B, Lindman B (2002) Surfactants and polymers in aqueous solution. Wiley, Chichester, United KingdomCrossRef
Metadaten
Titel
Electrostatic Layer-by-Layer Self-Assembly Method: A Physico-Chemical Perspective
verfasst von
Eduardo Guzmán
Ana Mateos-Maroto
Francisco Ortega
Ramón G. Rubio
Copyright-Jahr
2022
DOI
https://doi.org/10.1007/978-3-031-00657-9_6

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