Titanium is widely recognized as an interesting material for electrodes due to its excel- lent corrosion resistance, mechanical strength, and biocompatibility. However, further functionalization is often necessary to impart advanced interfacial properties, such as selective ion transport or stimuli responsiveness. In this context, the integration of smart polymers, such as poly(2-(dimethylamino)ethyl methacrylate) (PDMAEMA)—noted for its dual pH- and thermo-responsive behavior—has emerged as a promising approach to tailor surface properties for next-generation devices. This work compares two covalent immobilization strategies for PDMAEMA on titanium: the “graft-to” method, involving the attachment of pre-synthesized polymer chains, and the “graft-from” method, based on surface-initiated polymerization. The resulting materials were characterized with size exclusion chromatography (SEC) for molecular weight, Fourier-transform infrared spec- troscopy (FTIR) for chemical structure, scanning electron microscopy (SEM) for surface morphology, and contact angle measurements for wettability. Electrochemical impedance spectroscopy and polarization studies were used to assess electrochemical performance. Both strategies yielded uniform and stable coatings, with the mode of grafting influencing both surface morphology and functional stability. These findings provide valuable insights into the development of adaptive, stimuli-responsive titanium-based interfaces in advanced electrochemical systems.

Frezza, C., Romano, S., Rocco, D., Masci, G., Sotgiu, G., Orsini, M., et al. (2025). Controlled PolyDMAEMA Functionalization of Titanium Surfaces via Graft-To and Graft-From Strategies. MICROMACHINES, 16(8) [10.3390/mi16080899].

Controlled PolyDMAEMA Functionalization of Titanium Surfaces via Graft-To and Graft-From Strategies

Frezza, Chiara;Romano, Susanna;Rocco, Daniele;Sotgiu, Giovanni;Orsini, Monica;Santis, Serena De
2025-01-01

Abstract

Titanium is widely recognized as an interesting material for electrodes due to its excel- lent corrosion resistance, mechanical strength, and biocompatibility. However, further functionalization is often necessary to impart advanced interfacial properties, such as selective ion transport or stimuli responsiveness. In this context, the integration of smart polymers, such as poly(2-(dimethylamino)ethyl methacrylate) (PDMAEMA)—noted for its dual pH- and thermo-responsive behavior—has emerged as a promising approach to tailor surface properties for next-generation devices. This work compares two covalent immobilization strategies for PDMAEMA on titanium: the “graft-to” method, involving the attachment of pre-synthesized polymer chains, and the “graft-from” method, based on surface-initiated polymerization. The resulting materials were characterized with size exclusion chromatography (SEC) for molecular weight, Fourier-transform infrared spec- troscopy (FTIR) for chemical structure, scanning electron microscopy (SEM) for surface morphology, and contact angle measurements for wettability. Electrochemical impedance spectroscopy and polarization studies were used to assess electrochemical performance. Both strategies yielded uniform and stable coatings, with the mode of grafting influencing both surface morphology and functional stability. These findings provide valuable insights into the development of adaptive, stimuli-responsive titanium-based interfaces in advanced electrochemical systems.
2025
Frezza, C., Romano, S., Rocco, D., Masci, G., Sotgiu, G., Orsini, M., et al. (2025). Controlled PolyDMAEMA Functionalization of Titanium Surfaces via Graft-To and Graft-From Strategies. MICROMACHINES, 16(8) [10.3390/mi16080899].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11590/518036
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