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Numerical insights on ionic microgels: structure and swelling behaviour.
Del Monte, Giovanni; Ninarello, Andrea; Camerin, Fabrizio; Rovigatti, Lorenzo; Gnan, Nicoletta; Zaccarelli, Emanuela.
Afiliação
  • Del Monte G; Physics Department, Sapienza University of Rome, Piazzale A. Moro 2, 00185 Rome, Italy. giovanni.delmonte@uniroma1.it and CNR-ISC, Sapienza University of Rome, Piazzale A. Moro 2, 00185 Rome, Italy. emanuela.zaccarelli@cnr.it and Center for Life NanoScience, Istituto Italiano di Tecnologia, Rome, It
  • Ninarello A; CNR-ISC, Sapienza University of Rome, Piazzale A. Moro 2, 00185 Rome, Italy. emanuela.zaccarelli@cnr.it and Physics Department, Sapienza University of Rome, Piazzale A. Moro 2, 00185 Rome, Italy. giovanni.delmonte@uniroma1.it.
  • Camerin F; CNR-ISC, Sapienza University of Rome, Piazzale A. Moro 2, 00185 Rome, Italy. emanuela.zaccarelli@cnr.it and Department of Basic and Applied Sciences for Engineering, Sapienza University of Rome, via A. Scarpa 14, 00161 Rome, Italy.
  • Rovigatti L; Physics Department, Sapienza University of Rome, Piazzale A. Moro 2, 00185 Rome, Italy. giovanni.delmonte@uniroma1.it and CNR-ISC, Sapienza University of Rome, Piazzale A. Moro 2, 00185 Rome, Italy. emanuela.zaccarelli@cnr.it.
  • Gnan N; CNR-ISC, Sapienza University of Rome, Piazzale A. Moro 2, 00185 Rome, Italy. emanuela.zaccarelli@cnr.it and Physics Department, Sapienza University of Rome, Piazzale A. Moro 2, 00185 Rome, Italy. giovanni.delmonte@uniroma1.it.
  • Zaccarelli E; CNR-ISC, Sapienza University of Rome, Piazzale A. Moro 2, 00185 Rome, Italy. emanuela.zaccarelli@cnr.it and Physics Department, Sapienza University of Rome, Piazzale A. Moro 2, 00185 Rome, Italy. giovanni.delmonte@uniroma1.it.
Soft Matter ; 15(40): 8113-8128, 2019 Oct 28.
Article em En | MEDLINE | ID: mdl-31589214
Recent progress has been made in the numerical modelling of neutral microgel particles with a realistic, disordered structure. In this work we extend this approach to the case of co-polymerised microgels where a thermoresponsive polymer is mixed with acidic groups. We compare the cases where counterions directly interact with microgel charges or are modelled implicitly through a Debye-Hückel description. We do so by performing extensive numerical simulations of single microgels across the volume phase transition (VPT) varying the temperature and the fraction of charged monomers. We find that the presence of charges considerably alters the microgel structure, quantified by the monomer density profiles and by the form factors of the microgels, particularly close to the VPT. We observe significant deviations between the implicit and explicit models, with the latter comparing more favourably to available experiments. In particular, we observe a shift of the VPT temperature to larger values as the amount of charged monomers increases. We also find that below the VPT the microgel-counterion complex is almost neutral, while it develops a net charge above the VPT. Interestingly, under these conditions the collapsed microgel still retains a large amount of counterions inside its structure. Since these interesting features cannot be captured by the implicit model, our results show that it is crucial to explicitly include the counterions in order to realistically model ionic thermoresponsive microgels.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article