Understanding the Photothermal and Photocatalytic Mechanism of Polydopamine Coated Gold Nanorods

Author:

Aguilar‐Ferrer Daniel12,Vasileiadis Thomas3,Iatsunskyi Igor1,Ziółek Marcin3,Żebrowska Klaudia1,Ivashchenko Olena1,Błaszkiewicz Paulina4,Grześkowiak Bartosz1,Pazos Raquel5,Moya Sergio6,Bechelany Mikhael27,Coy Emerson1ORCID

Affiliation:

1. NanoBioMedical Centre Adam Mickiewicz University Wszechnicy Piastowskiej 3 Poznan 61‐614 Poland

2. Institut Européen des Membranes IEM UMR 5635 University of Montpellier ENSCM Centre National De la Recherche Scientifique (CNRS) Montpellier 34730 France

3. Faculty of Physics Adam Mickiewicz University Uniwersytetu Poznańskiego 2 Poznań 61‐614 Poland

4. Faculty of Materials Engineering and Technical Physics Poznan University of Technology Piotrowo 3 Poznan 60‐965 Poland

5. Chromatography & Mass Spectrometry Platform CIC biomaGUNE Paseo Miramón 182 San Sebastián 20014 Spain

6. Soft Matter Nanotechnology Centre for Cooperative Research in Biomaterials (CIC biomaGUNE) Basque Research and Technology Alliance (BRTA) Paseo Miramon 182 C Donostia‐San Sebastian 20014 Spain

7. Gulf University for Science and Technology (GUST) Hawalli 32093 Kuwait

Abstract

AbstractLocalized surface plasmon resonance (LSPRs) shown by gold nanorods (AuNRs) has several applications in photocatalysis, sensing, and biomedicine. The combination of AuNRs with Polydopamine (PDA) shells results in a strong photo‐thermal effect, making them appealing nanomaterials for biomedical applications. However, the precise roles and relative contributions of plasmonic effects in gold, and light‐to‐heat conversion in PDA are still debated. Herein, a hybrid nanoplatform made by an AuNR core surrounded by a polydopamine (PDA) shell is synthesized, and its photocatalytic behavior is studied. Synthesis is based on a seed‐mediated growth followed by the further self‐polymerization of dopamine hydrochloride (DA) on the surface of the AuNRs, and the effect of the thickness of the PDA shell on the plasmon response of the composite is the main examined parameter. Photocatalytic performance is tested toward Rhodamine 6G (Rh6G), with the nanocomposites achieving better performance than bare AuNRs and bare PDA nanoparticles. The degradation of 54% of Rh6G initial concentration is achieved within 60 min of irradiation with a catalyst concentration of 7.4 µg mL−1. Photodegradation kinetics, time‐resolved spectroscopy, and finite‐element‐method simulations of plasmons show that AuNRs plasmons, coupled with the low thermal conductivity of PDA, provide slow thermalization, while enhancing the charge carrier transfer.

Funder

Narodowe Centrum Nauki

Horizon 2020 Framework Programme

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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