NIR-Absorbing Mesoporous Silica-Coated Copper Sulphide Nanostructures for Light-to-Thermal Energy Conversion

Author:

Fanizza Elisabetta12ORCID,Mastrogiacomo Rita12,Pugliese Orietta1,Guglielmelli Alexa34,De Sio Luciano45ORCID,Castaldo Rachele6ORCID,Scavo Maria7ORCID,Giancaspro Mariangela12,Rizzi Federica12ORCID,Gentile Gennaro6ORCID,Vischio Fabio2,Carrieri Livianna7ORCID,De Pasquale Ilaria2ORCID,Mandriota Giacomo2,Petronella Francesca8ORCID,Ingrosso Chiara2,Lavorgna Marino9ORCID,Comparelli Roberto2ORCID,Striccoli Marinella2ORCID,Curri Maria12,Depalo Nicoletta2ORCID

Affiliation:

1. Department of Chemistry, University of Bari, A. Moro, Via Orabona 4, 70126 Bari, Italy

2. CNR-IPCF Bari Division, Via Orabona 4, 70125 Bari, Italy

3. Department of Physics, NLHT-Lab, University of Calabria, Via Ponte P. Bucci, Cubo 33C, 87036 Rende, Italy

4. CNR-NANOTEC-Institute of Nanotechnology, Via Ponte P. Bucci, Cubo 33C, 87036 Rende, Italy

5. Department of Medico-Surgical Sciences and Biotechnologies, Research Center for Biophotonics, Sapienza University of Rome, Corso della Repubblica 79, 04100 Latina, Italy

6. CNR-IPCB, Via Campi Flegrei 34, 80078 Pozzuoli, Italy

7. National Institute of Gastroenterology Saverio de Bellis, IRCCS Research Hospital, Via Turi 27, 70013 Castellana Grotte, Italy

8. CNR-IC, Via Salaria Km 29.300, 00015 Monterotondo, Italy

9. CNR-IPCB, Piazzale E. Fermi 1, 80055 Portici, Italy

Abstract

Plasmonic nanostructures, featuring near infrared (NIR)-absorption, are rising as efficient nanosystems for in vitro photothermal (PT) studies and in vivo PT treatment of cancer diseases. Among the different materials, new plasmonic nanostructures based on Cu2−xS nanocrystals (NCs) are emerging as valuable alternatives to Au nanorods, nanostars and nanoshells, largely exploited as NIR absorbing nanoheaters. Even though Cu2−xS plasmonic properties are not linked to geometry, the role played by their size, shape and surface chemistry is expected to be fundamental for an efficient PT process. Here, Cu2−xS NCs coated with a hydrophilic mesoporous silica shell (MSS) are synthesized by solution-phase strategies, tuning the core geometry, MSS thickness and texture. Besides their loading capability, the silica shell has been widely reported to provide a more robust plasmonic core protection than organic molecular/polymeric coatings, and improved heat flow from the NC to the environment due to a reduced interfacial thermal resistance and direct electron–phonon coupling through the interface. Systematic structural and morphological analysis of the core-shell nanoparticles and an in-depth thermoplasmonic characterization by using a pump beam 808 nm laser, are carried out. The results suggest that large triangular nanoplates (NPLs) coated by a few tens of nanometers thick MSS, show good photostability under laser light irradiation and provide a temperature increase above 38 °C and a 20% PT efficiency upon short irradiation time (60 s) at 6 W/cm2 power density.

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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