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Erschienen in: Colloid and Polymer Science 5/2019

12.03.2019 | Original Contribution

Adsorption of polyelectrolytes onto the oppositely charged surface of tubular J-aggregates of a cyanine dye

verfasst von: Omar Al-Khatib, Christoph Böttcher, Hans von Berlepsch, Katherine Herman, Sebastian Schön, Jürgen P. Rabe, Stefan Kirstein

Erschienen in: Colloid and Polymer Science | Ausgabe 5/2019

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Abstract

The adsorption of three different polycations at the negatively charged surface of tubular J-aggregates of the amphiphilic cyanine dye 3,3′-bis(2-sulfopropyl)-5,5′,6,6′-tetrachloro-1,1′-dioctylbenzimidacarbocyanine (C8S3) is investigated by means of cryogenic electron microscopy and optical absorption spectroscopy. All three polycations could be adsorbed at the tubular aggregates without flocculation or precipitation when added in molar amounts of monomers sufficiently smaller than that of the dye molecules. It is found that preferably, a minority of aggregates is coated by the polycations while a majority of aggregates is left uncoated. For the coated aggregates, the adsorption leads to charge reversal of the aggregate surface as supported by zeta potential measurements. The morphology of the coating differs significantly for the three polycations: The branched polycation polyethylenimine (PEI) attaches to the tubular aggregate by hit-and-stick adsorption of the coiled state in solution forming irregular clot-like coatings; the flexible and weakly cationic poly (allylamine hydrochloride) (PAH) forms a more homogeneous coating but destroys the integrity of the dye aggregate; the more hydrophobic and strong polycation poly (diallyldimethylammonium chloride) (PDADMAC) forms a thin and homogeneous layer, supposedly by wrapping around the tubular aggregate. For the latter growth of a second double layer of dyes is observed for the aggregates. The different morphologies of the coating layers are explained by the details of the chemical structure of the polycations. The possible adsorption of polyelectrolytes at these amphiphilic tubular structures, stabilized by means of hydrophobic forces, is far from obvious and demonstrates an applicable route to the build-up of more complex nanostructures in solution by means of a self-assembly process.

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Literatur
1.
Zurück zum Zitat Whitesides GM, Boncheva M (2002) Beyond molecules: self-assembly of mesoscopic and macroscopic components. Proc Natl Acad Sci 99(8):4769–4774CrossRefPubMed Whitesides GM, Boncheva M (2002) Beyond molecules: self-assembly of mesoscopic and macroscopic components. Proc Natl Acad Sci 99(8):4769–4774CrossRefPubMed
2.
Zurück zum Zitat Aliprandi A, Mauro M, De Cola L (2015) Controlling and imaging biomimetic self-assembly. Nat Chem 8:10CrossRefPubMed Aliprandi A, Mauro M, De Cola L (2015) Controlling and imaging biomimetic self-assembly. Nat Chem 8:10CrossRefPubMed
3.
Zurück zum Zitat Donath E, Sukhorukov GB, Caruso F, Davis SA, Möhwald H (1998) Novel hollow polymer shells by colloid-templated assembly of polyelectrolytes. Angew Chem Int Ed 37(16):2201–2205CrossRef Donath E, Sukhorukov GB, Caruso F, Davis SA, Möhwald H (1998) Novel hollow polymer shells by colloid-templated assembly of polyelectrolytes. Angew Chem Int Ed 37(16):2201–2205CrossRef
4.
Zurück zum Zitat Sukhorukov GB, Donath E, Lichtenfeld H, Knippel E, Knippel M, Budde A, Möhwald H (1998) Layer-by-layer self assembly of polyelectrolytes on colloidal particles. Colloids Surf A Physicochem Eng Asp 137(1–3):253–266CrossRef Sukhorukov GB, Donath E, Lichtenfeld H, Knippel E, Knippel M, Budde A, Möhwald H (1998) Layer-by-layer self assembly of polyelectrolytes on colloidal particles. Colloids Surf A Physicochem Eng Asp 137(1–3):253–266CrossRef
5.
Zurück zum Zitat Schönhoff M (2003) Layered polyelectrolyte complexes: physics of formation and molecular properties. J Phys Condens Matter 15(49):R1781–R1808CrossRef Schönhoff M (2003) Layered polyelectrolyte complexes: physics of formation and molecular properties. J Phys Condens Matter 15(49):R1781–R1808CrossRef
6.
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
7.
Zurück zum Zitat Caruso RA, Susha A, Caruso F (2001) Multilayered titania, silica, and laponite nanoparticle coatings on polystyrene colloidal templates and resulting inorganic hollow spheres. Chem Mater 13(2):400–409CrossRef Caruso RA, Susha A, Caruso F (2001) Multilayered titania, silica, and laponite nanoparticle coatings on polystyrene colloidal templates and resulting inorganic hollow spheres. Chem Mater 13(2):400–409CrossRef
8.
Zurück zum Zitat Decher G (1997) Fuzzy nanoassemblies: toward layered polymeric multicomposites. Science 277(5330):1232–1237CrossRef Decher G (1997) Fuzzy nanoassemblies: toward layered polymeric multicomposites. Science 277(5330):1232–1237CrossRef
9.
Zurück zum Zitat Sukhorukov GB, Donath E, Davis S, Lichtenfeld H, Caruso F, Popov VI, Möhwald H (1998) Stepwise polyelectrolyte assembly on particle surfaces: a novel approach to colloid design. Polym Adv Technol 9(10–11):759–767CrossRef Sukhorukov GB, Donath E, Davis S, Lichtenfeld H, Caruso F, Popov VI, Möhwald H (1998) Stepwise polyelectrolyte assembly on particle surfaces: a novel approach to colloid design. Polym Adv Technol 9(10–11):759–767CrossRef
10.
Zurück zum Zitat Gössl I, Shu L, Schlüter AD, Rabe JP (2002) Molecular structure of single DNA complexes with positively charged dendronized polymers. J Am Chem Soc 124(24):6860–6865CrossRefPubMed Gössl I, Shu L, Schlüter AD, Rabe JP (2002) Molecular structure of single DNA complexes with positively charged dendronized polymers. J Am Chem Soc 124(24):6860–6865CrossRefPubMed
11.
Zurück zum Zitat Pham TD, Bui TT, Nguyen VT, Bui TKV, Tran TT, Phan QC, Pham TD, Hoang TH (2018) Adsorption of polyelectrolyte onto nanosilica synthesized from rice husk: characteristics, mechanisms, and application for antibiotic removal. Polymers 10(2):220CrossRefPubMedCentral Pham TD, Bui TT, Nguyen VT, Bui TKV, Tran TT, Phan QC, Pham TD, Hoang TH (2018) Adsorption of polyelectrolyte onto nanosilica synthesized from rice husk: characteristics, mechanisms, and application for antibiotic removal. Polymers 10(2):220CrossRefPubMedCentral
12.
Zurück zum Zitat Wen-Jing S, Jin-Zhi D, Tian-Meng S, Pei-Zhuo Z, Jun W (2010) Gold nanoparticles capped with polyethyleneimine for enhanced siRNA delivery. Small 6(2):239–246CrossRef Wen-Jing S, Jin-Zhi D, Tian-Meng S, Pei-Zhuo Z, Jun W (2010) Gold nanoparticles capped with polyethyleneimine for enhanced siRNA delivery. Small 6(2):239–246CrossRef
13.
Zurück zum Zitat Schneider G, Decher G (2004) From functional core/shell nanoparticles prepared via layer-by-layer deposition to empty nanospheres. Nano Lett 4(10):1833–1839CrossRef Schneider G, Decher G (2004) From functional core/shell nanoparticles prepared via layer-by-layer deposition to empty nanospheres. Nano Lett 4(10):1833–1839CrossRef
14.
Zurück zum Zitat Schlenoff JB, Dubas ST (2001) Mechanism of polyelectrolyte multilayer growth: charge overcompensation and distribution. Macromolecules 34(3):592–598CrossRef Schlenoff JB, Dubas ST (2001) Mechanism of polyelectrolyte multilayer growth: charge overcompensation and distribution. Macromolecules 34(3):592–598CrossRef
15.
Zurück zum Zitat Schwarz B, Schönhoff M (2002) Surface potential driven swelling of polyelectrolyte multilayers. Langmuir 18(8):2964–2966CrossRef Schwarz B, Schönhoff M (2002) Surface potential driven swelling of polyelectrolyte multilayers. Langmuir 18(8):2964–2966CrossRef
16.
Zurück zum Zitat Netz RR, Andelman D (2003) Neutral and charged polymers at interfaces. Phys Rep 380(1–2):1–95CrossRef Netz RR, Andelman D (2003) Neutral and charged polymers at interfaces. Phys Rep 380(1–2):1–95CrossRef
17.
Zurück zum Zitat Dubas ST, Schlenoff JB (1999) Factors controlling the growth of polyelectrolyte multilayers. Macromolecules 32(24):8153–8160CrossRef Dubas ST, Schlenoff JB (1999) Factors controlling the growth of polyelectrolyte multilayers. Macromolecules 32(24):8153–8160CrossRef
18.
Zurück zum Zitat Choi J, Rubner MF (2005) Influence of the degree of ionization on weak polyelectrolyte multilayer assembly. Macromolecules 38(1):116–124CrossRef Choi J, Rubner MF (2005) Influence of the degree of ionization on weak polyelectrolyte multilayer assembly. Macromolecules 38(1):116–124CrossRef
19.
Zurück zum Zitat Lösche M, Schmitt J, Decher G, Bouwman WG, Kjaer K (1998) Detailed structure of molecularly thin polyelectrolyte multilayer films on solid substrates as revealed by neutron reflectometry. Macromolecules 31(25):8893–8906CrossRef Lösche M, Schmitt J, Decher G, Bouwman WG, Kjaer K (1998) Detailed structure of molecularly thin polyelectrolyte multilayer films on solid substrates as revealed by neutron reflectometry. Macromolecules 31(25):8893–8906CrossRef
20.
Zurück zum Zitat Blokzijl W, Engberts JB (1993) Hydrophobic effects. Opinions and facts. Angew Chem Int Ed Engl 32(11):1545–1579CrossRef Blokzijl W, Engberts JB (1993) Hydrophobic effects. Opinions and facts. Angew Chem Int Ed Engl 32(11):1545–1579CrossRef
21.
Zurück zum Zitat Kotov N (1999) Layer-by-layer self-assembly: the contribution of hydrophobic interactions. Nanostruct Mater 12(5–8):789–796CrossRef Kotov N (1999) Layer-by-layer self-assembly: the contribution of hydrophobic interactions. Nanostruct Mater 12(5–8):789–796CrossRef
22.
Zurück zum Zitat Schönhoff M, Söderman O (1997) PFG-NMR diffusion as a method to investigate the equilibrium adsorption dynamics of surfactants at the solid/liquid interface. J Phys Chem B 101(41):8237–8242CrossRef Schönhoff M, Söderman O (1997) PFG-NMR diffusion as a method to investigate the equilibrium adsorption dynamics of surfactants at the solid/liquid interface. J Phys Chem B 101(41):8237–8242CrossRef
23.
Zurück zum Zitat McQuigg DW, Kaplan JI, Dubin PL (1992) Critical conditions for the binding of polyelectrolytes to small oppositely charged micelles. J Phys Chem 96(4):1973–1978CrossRef McQuigg DW, Kaplan JI, Dubin PL (1992) Critical conditions for the binding of polyelectrolytes to small oppositely charged micelles. J Phys Chem 96(4):1973–1978CrossRef
24.
Zurück zum Zitat Majewski J, Wong JY, Park CK, Seitz M, Israelachvili JN, Smith GS (1998) Structural studies of polymer-cushioned lipid bilayers. Biophys J 75(5):2363–2367CrossRefPubMedPubMedCentral Majewski J, Wong JY, Park CK, Seitz M, Israelachvili JN, Smith GS (1998) Structural studies of polymer-cushioned lipid bilayers. Biophys J 75(5):2363–2367CrossRefPubMedPubMedCentral
25.
Zurück zum Zitat Yaroslavov AA, Rakhnyanskaya AA, Yaroslavova EG, Efimova AA, Menger FM (2008) Polyelectrolyte-coated liposomes: stabilization of the interfacial complexes. Adv Colloid Interf Sci 142(1–2):43–52CrossRef Yaroslavov AA, Rakhnyanskaya AA, Yaroslavova EG, Efimova AA, Menger FM (2008) Polyelectrolyte-coated liposomes: stabilization of the interfacial complexes. Adv Colloid Interf Sci 142(1–2):43–52CrossRef
26.
Zurück zum Zitat von Berlepsch H, Kirstein S, Hania R, Pugzlys A, Böttcher C (2007) Modification of the nanoscale structure of the J-aggregate of a sulfonate-substituted amphiphilic carbocyanine dye through incorporation of surface-active additives. J Phys Chem B 111(7):1701–1711CrossRef von Berlepsch H, Kirstein S, Hania R, Pugzlys A, Böttcher C (2007) Modification of the nanoscale structure of the J-aggregate of a sulfonate-substituted amphiphilic carbocyanine dye through incorporation of surface-active additives. J Phys Chem B 111(7):1701–1711CrossRef
27.
Zurück zum Zitat Eisele DM, Knoester J, Kirstein S, Rabe JP, Vanden Bout DA (2009) Uniform exciton fluorescence from individual molecular nanotubes immobilized on solid substrates. Nat Nanotechnol 4(10):658–663CrossRefPubMed Eisele DM, Knoester J, Kirstein S, Rabe JP, Vanden Bout DA (2009) Uniform exciton fluorescence from individual molecular nanotubes immobilized on solid substrates. Nat Nanotechnol 4(10):658–663CrossRefPubMed
28.
Zurück zum Zitat Megow J, Rohr MI, Schmidt am Busch M, Renger T, Mitric R, Kirstein S, Rabe JP, May V (2015) Site-dependence of van der Waals interaction explains exciton spectra of double-walled tubular J-aggregates. Phys Chem Chem Phys 17(10):6741–6747CrossRefPubMed Megow J, Rohr MI, Schmidt am Busch M, Renger T, Mitric R, Kirstein S, Rabe JP, May V (2015) Site-dependence of van der Waals interaction explains exciton spectra of double-walled tubular J-aggregates. Phys Chem Chem Phys 17(10):6741–6747CrossRefPubMed
29.
Zurück zum Zitat Kobayashi, T. (2012) J-aggregates, vol. 2, World Scientific Kobayashi, T. (2012) J-aggregates, vol. 2, World Scientific
30.
Zurück zum Zitat Würthner F, Kaiser TE, Saha-Möller CR (2011) J-aggregates: from serendipitous discovery to supramolecular engineering of functional dye materials. Angew Chem Int Ed 50(15):3376–3410CrossRef Würthner F, Kaiser TE, Saha-Möller CR (2011) J-aggregates: from serendipitous discovery to supramolecular engineering of functional dye materials. Angew Chem Int Ed 50(15):3376–3410CrossRef
31.
Zurück zum Zitat Kirstein S, Dähne S (2006) J-aggregates of amphiphilic cyanine dyes: self-organization of artificial light harvesting complexes. International Journal of Photoenergy 2006:1–21 Kirstein S, Dähne S (2006) J-aggregates of amphiphilic cyanine dyes: self-organization of artificial light harvesting complexes. International Journal of Photoenergy 2006:1–21
32.
Zurück zum Zitat Ctl D, Klugkist JA, Knoester J (2002) Optical properties of helical cylindrical molecular aggregates: the homogeneous limit. J Phys Chem B 106(44):11474–11486CrossRef Ctl D, Klugkist JA, Knoester J (2002) Optical properties of helical cylindrical molecular aggregates: the homogeneous limit. J Phys Chem B 106(44):11474–11486CrossRef
33.
Zurück zum Zitat Eisele D, Cone C, Bloemsma E, Vlaming S, Van Der Kwaak C, Silbey RJ, Bawendi MG, Knoester J, Rabe J, Bout DV (2012) Utilizing redox-chemistry to elucidate the nature of exciton transitions in supramolecular dye nanotubes. Nat Chem 4(8):655–662CrossRefPubMed Eisele D, Cone C, Bloemsma E, Vlaming S, Van Der Kwaak C, Silbey RJ, Bawendi MG, Knoester J, Rabe J, Bout DV (2012) Utilizing redox-chemistry to elucidate the nature of exciton transitions in supramolecular dye nanotubes. Nat Chem 4(8):655–662CrossRefPubMed
34.
Zurück zum Zitat Didraga Ctl PA, Hania PR, von Berlepsch H, Duppen K, Knoester J (2004) Structure, spectroscopy, and microscopic model of tubular carbocyanine dye aggregates. J Phys Chem B 108(39):14976–14985CrossRef Didraga Ctl PA, Hania PR, von Berlepsch H, Duppen K, Knoester J (2004) Structure, spectroscopy, and microscopic model of tubular carbocyanine dye aggregates. J Phys Chem B 108(39):14976–14985CrossRef
35.
Zurück zum Zitat Jachimska B, Jasiński T, Warszyński P, Adamczyk Z (2010) Conformations of poly (allylamine hydrochloride) in electrolyte solutions: experimental measurements and theoretical modeling. Colloids Surf A Physicochem Eng Asp 355(1–3):7–15CrossRef Jachimska B, Jasiński T, Warszyński P, Adamczyk Z (2010) Conformations of poly (allylamine hydrochloride) in electrolyte solutions: experimental measurements and theoretical modeling. Colloids Surf A Physicochem Eng Asp 355(1–3):7–15CrossRef
36.
Zurück zum Zitat Dautzenberg H, Görnitz E, Jaeger W (1998) Synthesis and characterization of poly (diallyldimethylammonium chloride) in a broad range of molecular weight. Macromol Chem Phys 199(8):1561–1571CrossRef Dautzenberg H, Görnitz E, Jaeger W (1998) Synthesis and characterization of poly (diallyldimethylammonium chloride) in a broad range of molecular weight. Macromol Chem Phys 199(8):1561–1571CrossRef
37.
Zurück zum Zitat von Harpe A, Petersen H, Li Y, Kissel T (2000) Characterization of commercially available and synthesized polyethylenimines for gene delivery. J Control Release 69(2):309–322CrossRef von Harpe A, Petersen H, Li Y, Kissel T (2000) Characterization of commercially available and synthesized polyethylenimines for gene delivery. J Control Release 69(2):309–322CrossRef
38.
Zurück zum Zitat Qiao Y, Polzer F, Kirmse H, Steeg E, Kühn S, Friede S, Kirstein S, Rabe JP (2015) Nanotubular J-aggregates and quantum dots coupled for efficient resonance excitation energy transfer. ACS Nano 9(2):1552–1560CrossRefPubMed Qiao Y, Polzer F, Kirmse H, Steeg E, Kühn S, Friede S, Kirstein S, Rabe JP (2015) Nanotubular J-aggregates and quantum dots coupled for efficient resonance excitation energy transfer. ACS Nano 9(2):1552–1560CrossRefPubMed
39.
Zurück zum Zitat Steeg E, Kirmse H, Rabe JP, Kirstein S (2018) Silver iodide nanowires grown within tubular J-aggregates. J Colloid Interface Sci 530:424–432CrossRefPubMed Steeg E, Kirmse H, Rabe JP, Kirstein S (2018) Silver iodide nanowires grown within tubular J-aggregates. J Colloid Interface Sci 530:424–432CrossRefPubMed
40.
Zurück zum Zitat von Berlepsch H, Böttcher C, Ouart A, Burger C, Dähne S, Kirstein S (2000) Supramolecular structures of J-aggregates of carbocyanine dyes in solution. J Phys Chem B 104(22):5255–5262CrossRef von Berlepsch H, Böttcher C, Ouart A, Burger C, Dähne S, Kirstein S (2000) Supramolecular structures of J-aggregates of carbocyanine dyes in solution. J Phys Chem B 104(22):5255–5262CrossRef
41.
Zurück zum Zitat Dubochet J, Adrian M, Chang J-J, Homo J-C, Lepault J, McDowall AW, Schultz P (1988) Cryo-electron microscopy of vitrified specimens. Q Rev Biophys 21(2):129–228CrossRefPubMed Dubochet J, Adrian M, Chang J-J, Homo J-C, Lepault J, McDowall AW, Schultz P (1988) Cryo-electron microscopy of vitrified specimens. Q Rev Biophys 21(2):129–228CrossRefPubMed
42.
Zurück zum Zitat Eisele DM, Arias DH, Fu X, Bloemsma EA, Steiner CP, Jensen RA, Rebentrost P, Eisele H, Tokmakoff A, Lloyd S, Nelson KA, Nicastro D, Knoester J, Bawendi MG (2014) Robust excitons inhabit soft supramolecular nanotubes. Proc Natl Acad Sci 111(33):E3367–E3375CrossRefPubMed Eisele DM, Arias DH, Fu X, Bloemsma EA, Steiner CP, Jensen RA, Rebentrost P, Eisele H, Tokmakoff A, Lloyd S, Nelson KA, Nicastro D, Knoester J, Bawendi MG (2014) Robust excitons inhabit soft supramolecular nanotubes. Proc Natl Acad Sci 111(33):E3367–E3375CrossRefPubMed
43.
Zurück zum Zitat Evans FD, Wennerström H (eds) (1999) The colloidal domain: where physics, chemistry, biology, and technology meet, 2nd edn. Wiley, New York Evans FD, Wennerström H (eds) (1999) The colloidal domain: where physics, chemistry, biology, and technology meet, 2nd edn. Wiley, New York
44.
Zurück zum Zitat Eisfeld A, Vlaming SM, Malyshev VA, Knoester J (2010) Excitons in molecular aggregates with Levy-type disorder: anomalous localization and exchange broadening of optical spectra. Phys Rev Lett 105(13):137402CrossRefPubMed Eisfeld A, Vlaming SM, Malyshev VA, Knoester J (2010) Excitons in molecular aggregates with Levy-type disorder: anomalous localization and exchange broadening of optical spectra. Phys Rev Lett 105(13):137402CrossRefPubMed
45.
Zurück zum Zitat Schneider G, Decher G (2008) Functional core/shell nanoparticles via layer-by-layer assembly. Investigation of the experimental parameters for controlling particle aggregation and for enhancing dispersion stability. Langmuir 24(5):1778–1789CrossRefPubMed Schneider G, Decher G (2008) Functional core/shell nanoparticles via layer-by-layer assembly. Investigation of the experimental parameters for controlling particle aggregation and for enhancing dispersion stability. Langmuir 24(5):1778–1789CrossRefPubMed
46.
Zurück zum Zitat von Berlepsch H, Kirstein S, Böttcher C (2004) Supramolecular structure of J-aggregates of a sulfonate substituted amphiphilic carbocyanine dye in solution: methanol-induced ribbon-to-tubule transformation. J Phys Chem B 108(48):18725–18733CrossRef von Berlepsch H, Kirstein S, Böttcher C (2004) Supramolecular structure of J-aggregates of a sulfonate substituted amphiphilic carbocyanine dye in solution: methanol-induced ribbon-to-tubule transformation. J Phys Chem B 108(48):18725–18733CrossRef
47.
Zurück zum Zitat Liu Y, Wu DC, Zhang WD, Jiang X, He CB, Chung TS, Goh SH, Leong KW (2005) Polyethylenimine-grafted multiwalled carbon nanotubes for secure noncovalent immobilization and efficient delivery of DNA. Angew Chem 117(30):4860–4863CrossRef Liu Y, Wu DC, Zhang WD, Jiang X, He CB, Chung TS, Goh SH, Leong KW (2005) Polyethylenimine-grafted multiwalled carbon nanotubes for secure noncovalent immobilization and efficient delivery of DNA. Angew Chem 117(30):4860–4863CrossRef
48.
Zurück zum Zitat Block S, Helm CA (2009) Single polyelectrolyte layers adsorbed at high salt conditions: polyelectrolyte brush domains coexisting with flatly adsorbed chains. Macromolecules 42(17):6733–6740CrossRef Block S, Helm CA (2009) Single polyelectrolyte layers adsorbed at high salt conditions: polyelectrolyte brush domains coexisting with flatly adsorbed chains. Macromolecules 42(17):6733–6740CrossRef
49.
Zurück zum Zitat Kirstein S, von Berlepsch H, Böttcher C, Burger C, Ouart A, Reck G, Dähne S (2000) Chiral J-aggregates formed by achiral cyanine dyes. Chemphyschem 1(3):146–150CrossRefPubMed Kirstein S, von Berlepsch H, Böttcher C, Burger C, Ouart A, Reck G, Dähne S (2000) Chiral J-aggregates formed by achiral cyanine dyes. Chemphyschem 1(3):146–150CrossRefPubMed
50.
Zurück zum Zitat Qiao Y, Polzer F, Kirmse H, Kirstein S, Rabe JP (2015) Nanohybrids from nanotubular J-aggregates and transparent silica nanoshells. Chem Commun 51(60):11980–11982CrossRef Qiao Y, Polzer F, Kirmse H, Kirstein S, Rabe JP (2015) Nanohybrids from nanotubular J-aggregates and transparent silica nanoshells. Chem Commun 51(60):11980–11982CrossRef
51.
Zurück zum Zitat Qiao Y, Polzer F, Kirmse H, Steeg E, Kirstein S, Rabe JP (2014) In situ synthesis of semiconductor nanocrystals at the surface of tubular J-aggregates. J Mater Chem C 2(43):9141–9148CrossRef Qiao Y, Polzer F, Kirmse H, Steeg E, Kirstein S, Rabe JP (2014) In situ synthesis of semiconductor nanocrystals at the surface of tubular J-aggregates. J Mater Chem C 2(43):9141–9148CrossRef
52.
Zurück zum Zitat Steeg E, Polzer F, Kirmse H, Qiao Y, Rabe JP, Kirstein S (2016) Nucleation, growth, and dissolution of silver nanostructures formed in nanotubular J-aggregates of amphiphilic cyanine dyes. J Colloid Interface Sci 472:187–194CrossRefPubMed Steeg E, Polzer F, Kirmse H, Qiao Y, Rabe JP, Kirstein S (2016) Nucleation, growth, and dissolution of silver nanostructures formed in nanotubular J-aggregates of amphiphilic cyanine dyes. J Colloid Interface Sci 472:187–194CrossRefPubMed
53.
Zurück zum Zitat Israelachvili JN, Mitchell DJ, Ninham BW (1976) Theory of self-assembly of hydrocarbon amphiphiles into micelles and bilayers. J Chem Soc Faraday Trans 2 72:1525–1568CrossRef Israelachvili JN, Mitchell DJ, Ninham BW (1976) Theory of self-assembly of hydrocarbon amphiphiles into micelles and bilayers. J Chem Soc Faraday Trans 2 72:1525–1568CrossRef
55.
Zurück zum Zitat Cherstvy AG, Winkler RG (2011) Polyelectrolyte adsorption onto oppositely charged interfaces: unified approach for plane, cylinder, and sphere. Phys Chem Chem Phys 13(24):11686–11693CrossRefPubMed Cherstvy AG, Winkler RG (2011) Polyelectrolyte adsorption onto oppositely charged interfaces: unified approach for plane, cylinder, and sphere. Phys Chem Chem Phys 13(24):11686–11693CrossRefPubMed
56.
Zurück zum Zitat Cherstvy AG, Winkler RG (2004) Complexation of semiflexible chains with oppositely charged cylinder. J Chem Phys 120(19):9394–9400CrossRefPubMed Cherstvy AG, Winkler RG (2004) Complexation of semiflexible chains with oppositely charged cylinder. J Chem Phys 120(19):9394–9400CrossRefPubMed
57.
Zurück zum Zitat Cherstvy A, Winkler R (2006) Strong and weak adsorptions of polyelectrolyte chains onto oppositely charged spheres. J Chem Phys 125(6):064904CrossRef Cherstvy A, Winkler R (2006) Strong and weak adsorptions of polyelectrolyte chains onto oppositely charged spheres. J Chem Phys 125(6):064904CrossRef
58.
Zurück zum Zitat Griffiths PC, Paul A, Stilbs P, Petterson E (2005) Charge on poly (ethylene imine): comparing electrophoretic NMR measurements and pH titrations. Macromolecules 38(8):3539–3542CrossRef Griffiths PC, Paul A, Stilbs P, Petterson E (2005) Charge on poly (ethylene imine): comparing electrophoretic NMR measurements and pH titrations. Macromolecules 38(8):3539–3542CrossRef
59.
Zurück zum Zitat Griffiths PC, Paul A, Fallis IA, Wellappili C, Murphy DM, Jenkins R, Waters SJ, Nilmini R, Heenan RK, King SM (2007) Derivatizing weak polyelectrolytes—solution properties, self-aggregation, and association with anionic surfaces of hydrophobically modified poly (ethylene imine). J Colloid Interface Sci 314(2):460–469CrossRefPubMed Griffiths PC, Paul A, Fallis IA, Wellappili C, Murphy DM, Jenkins R, Waters SJ, Nilmini R, Heenan RK, King SM (2007) Derivatizing weak polyelectrolytes—solution properties, self-aggregation, and association with anionic surfaces of hydrophobically modified poly (ethylene imine). J Colloid Interface Sci 314(2):460–469CrossRefPubMed
60.
Zurück zum Zitat Qu F, Li NB, Luo HQ (2013) Highly sensitive fluorescent and colorimetric pH sensor based on polyethylenimine-capped silver nanoclusters. Langmuir 29(4):1199–1205CrossRefPubMed Qu F, Li NB, Luo HQ (2013) Highly sensitive fluorescent and colorimetric pH sensor based on polyethylenimine-capped silver nanoclusters. Langmuir 29(4):1199–1205CrossRefPubMed
61.
Zurück zum Zitat Park IH, Choi E-J (1996) Characterization of branched polyethyleneimine by laser light scattering and viscometry. Polymer 37(2):313–319CrossRef Park IH, Choi E-J (1996) Characterization of branched polyethyleneimine by laser light scattering and viscometry. Polymer 37(2):313–319CrossRef
62.
Zurück zum Zitat Tarabia M, Hong H, Davidov D, Kirstein S, Steitz R, Neumann R, Avny Y (1998) Neutron and x-ray reflectivity studies of self-assembled heterostructures based on conjugated polymers. J Appl Phys 83(2):725–732CrossRef Tarabia M, Hong H, Davidov D, Kirstein S, Steitz R, Neumann R, Avny Y (1998) Neutron and x-ray reflectivity studies of self-assembled heterostructures based on conjugated polymers. J Appl Phys 83(2):725–732CrossRef
63.
Zurück zum Zitat Lavalle P, Gergely C, Cuisinier F, Decher G, Schaaf P, Voegel J, Picart C (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(11):4458–4465CrossRef Lavalle P, Gergely C, Cuisinier F, Decher G, Schaaf P, Voegel J, Picart C (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(11):4458–4465CrossRef
64.
Zurück zum Zitat Büscher K, Graf K, Ahrens H, Helm CA (2002) Influence of adsorption conditions on the structure of polyelectrolyte multilayers. Langmuir 18(9):3585–3591CrossRef Büscher K, Graf K, Ahrens H, Helm CA (2002) Influence of adsorption conditions on the structure of polyelectrolyte multilayers. Langmuir 18(9):3585–3591CrossRef
Metadaten
Titel
Adsorption of polyelectrolytes onto the oppositely charged surface of tubular J-aggregates of a cyanine dye
verfasst von
Omar Al-Khatib
Christoph Böttcher
Hans von Berlepsch
Katherine Herman
Sebastian Schön
Jürgen P. Rabe
Stefan Kirstein
Publikationsdatum
12.03.2019
Verlag
Springer Berlin Heidelberg
Erschienen in
Colloid and Polymer Science / Ausgabe 5/2019
Print ISSN: 0303-402X
Elektronische ISSN: 1435-1536
DOI
https://doi.org/10.1007/s00396-019-04487-5

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