Stimuli-responsive microgels have attracted great interest in recent years as building blocks for fabricating smart surfaces with many technological applications. In particular, PNIPAM microgels are promising candidates for creating thermo-responsive scaffolds to control cell growth and detachment via temperature stimuli. In this framework, understanding the influence of the solid substrate is critical for tailoring microgel coatings to specific applications. The surface modification of the substrate is a winning strategy used to manage microgel-substrate interactions. To control the spreading of microgel particles on a solid surface, glass substrates are coated with a PEI or an APTES layer to improve surface hydrophobicity and add positive charges on the interface. A systematic investigation of PNIPAM microgels spin-coated through a double-step deposition protocol on pristine glass and on functionalised glasses was performed by combining wettability measurements and Atomic Force Microscopy. The greater flattening of microgel particles on less hydrophilic substrates can be explained as a consequence of the reduced shielding of the water-substrate interactions that favors electrostatic interactions between microgels and the substrate. This approach allows the yielding of effective control on microgel coatings that will help to unlock new possibilities for their application in biomedical devices, sensors, or responsive surfaces.

Influence of a solid surface on PNIPAM microgel films / Nigro, Valentina; Angelini, Roberta; Buratti, Elena; Colantonio, Claudia; D'Amato, Rosaria; Dinelli, Franco; Franco, Silvia; Limosani, Francesca; Maria Montereali, Rosa; Nichelatti, Enrico; Piccinini, Massimo; Aurora Vincenti, Maria; Ruzicka, Barbara. - In: GELS. - ISSN 2310-2861. - 10:7(2024), pp. 1-11. [10.3390/gels10070473]

Influence of a solid surface on PNIPAM microgel films

Valentina Nigro
;
ROBERTA ANGELINI;Claudia Colantonio;Silvia Franco;BARBARA RUZICKA
2024

Abstract

Stimuli-responsive microgels have attracted great interest in recent years as building blocks for fabricating smart surfaces with many technological applications. In particular, PNIPAM microgels are promising candidates for creating thermo-responsive scaffolds to control cell growth and detachment via temperature stimuli. In this framework, understanding the influence of the solid substrate is critical for tailoring microgel coatings to specific applications. The surface modification of the substrate is a winning strategy used to manage microgel-substrate interactions. To control the spreading of microgel particles on a solid surface, glass substrates are coated with a PEI or an APTES layer to improve surface hydrophobicity and add positive charges on the interface. A systematic investigation of PNIPAM microgels spin-coated through a double-step deposition protocol on pristine glass and on functionalised glasses was performed by combining wettability measurements and Atomic Force Microscopy. The greater flattening of microgel particles on less hydrophilic substrates can be explained as a consequence of the reduced shielding of the water-substrate interactions that favors electrostatic interactions between microgels and the substrate. This approach allows the yielding of effective control on microgel coatings that will help to unlock new possibilities for their application in biomedical devices, sensors, or responsive surfaces.
2024
PNIPAM; microgels; surface modification; thin films
01 Pubblicazione su rivista::01a Articolo in rivista
Influence of a solid surface on PNIPAM microgel films / Nigro, Valentina; Angelini, Roberta; Buratti, Elena; Colantonio, Claudia; D'Amato, Rosaria; Dinelli, Franco; Franco, Silvia; Limosani, Francesca; Maria Montereali, Rosa; Nichelatti, Enrico; Piccinini, Massimo; Aurora Vincenti, Maria; Ruzicka, Barbara. - In: GELS. - ISSN 2310-2861. - 10:7(2024), pp. 1-11. [10.3390/gels10070473]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1733193
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