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Chemisorption vs. physisorption in perfluorinated Zn(II) porphyrin–SnO2 hybrids for acetone chemoresistive detection

Articolo
Data di Pubblicazione:
2025
Citazione:
Chemisorption vs. physisorption in perfluorinated Zn(II) porphyrin–SnO2 hybrids for acetone chemoresistive detection / M. Minnucci, S. Oregioni, E. Pargoletti, G. Di Carlo, F. Tessore, G.L. Chiarello, R. Martinazzo, M.I. Trioni, G. Cappelletti. - In: MOLECULES. - ISSN 1420-3049. - 30:24(2025 Dec 12), pp. 4749.1-4749.14. [10.3390/molecules30244749]
Abstract:
In this study, the integration of SnO2 with a perfluorinated Zn(II) porphyrin derivative, namely ZnTPPF20CN, was explored as a strategy to enhance the performance of chemoresistive sensors toward gaseous acetone detection. The ZnTPPF20CN molecule was specifically designed with an ethynylphenyl-cyanoacrylic anchoring group and a benzothiadiazole (BTD) spacer, enabling its chemisorption onto the SnO2 surface. Hybrid materials containing three different ZnTPPF20CN-to-SnO2 ratios (1:4, 1:32, 1:64) were fabricated and tested for acetone detection at 120 °C, both under dark conditions and LED illumination. The sensing behavior of these hybrids was compared with that of previously studied SnO2 composites, incorporating physisorbed, unsubstituted ZnTPPF20. Among the tested ratios, the 1:32 ZnTPPF20CN/SnO2 demonstrated superior acetone sensitivity compared to its unmodified counterpart, despite showing a lower intrinsic conductivity in air and a reduced electron transfer efficiency. Density functional theory (DFT) calculations provided insights into the possible anchoring modes and interfacial electronic interactions, helping to rationalize this counterintuitive observation. The enhanced sensing response was attributed to a more favorable balance between charge injection and the availability of SnO2 electronic states, facilitated by the chemisorbed anchoring of ZnTPPF20CN. Overall, our findings highlight the importance of molecular engineering, particularly in terms of molecular design, loading ratio, and anchoring mechanism, in modulating charge dynamics and optimizing the sensing efficiency of porphyrin/SnO2 nanocomposites.
Tipologia IRIS:
01 - Articolo su periodico
Keywords:
chemoresistors; gaseous acetone sensing; tin dioxide; porphyrins; nanocomposites; hybrids; density functional theory
Elenco autori:
M. Minnucci, S. Oregioni, E. Pargoletti, G. Di Carlo, F. Tessore, G.L. Chiarello, R. Martinazzo, M.I. Trioni, G. Cappelletti
Autori di Ateneo:
CAPPELLETTI GIUSEPPE ( autore )
CHIARELLO GIAN LUCA ( autore )
DI CARLO GABRIELE ( autore )
MARTINAZZO ROCCO ( autore )
MINNUCCI MANUEL ( autore )
OREGIONI SARA ( autore )
PARGOLETTI ELEONORA ( autore )
TESSORE FRANCESCA ELEONORA VITTORIA GIOVANNA ( autore )
Link alla scheda completa:
https://air.unimi.it/handle/2434/1204455
Link al Full Text:
https://air.unimi.it/retrieve/handle/2434/1204455/3210865/Molecules_completo%20(main%20e%20SI).pdf
Progetto:
Progetto PSR (2025) Linea 8- Sottomisura A - Dott.ssa Eleonora PARGOLETTI - Materiali ibridi stimolo-responsivi per sensori a gas in stato solido
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Settore CHEM-02/A - Chimica fisica

Settore CHEM-03/A - Chimica generale e inorganica
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Realizzato con VIVO | Progettato da Cineca | 25.12.4.0