Laser-Ablative Synthesis of Silicon–Iron Composite Nanoparticles for Theranostic Applications

Author:

Bubnov Alexander A.12,Belov Vladimir S.1,Kargina Yulia V.13,Tikhonowski Gleb V.1ORCID,Popov Anton A.1,Kharin Alexander Yu.1,Shestakov Mikhail V.14ORCID,Perepukhov Alexander M.5,Syuy Alexander V.5ORCID,Volkov Valentyn S.5ORCID,Khovaylo Vladimir V.6ORCID,Klimentov Sergey M.1,Kabashin Andrei V.7ORCID,Timoshenko Victor Yu.13ORCID

Affiliation:

1. Institute of Engineering Physics for Biomedicine (PhysBio), National Nuclear Research University MEPhI, 115409 Moscow, Russia

2. Endocrinology Research Centre, Dmitry Ulyanov Street 11, 292236 Moscow, Russia

3. Faculty of Physics, Lomonosov Moscow State University, Leninskie Gory 1, 119991 Moscow, Russia

4. Moscow Timiryazev Agricultural Academy - Russian State Agrarian University, 127434 Moscow, Russia

5. Moscow Institute of Physics and Technology, Dolgoprudny, 141700 Moscow Region, Russia

6. Department of Functional Nanosystems and High-Temperature Materials, National University of Science and Technology MISIS, Leninskiy Prospekt 4, 119049 Moscow, Russia

7. LP3, Aix Marseille University, CNRS, Campus de Luminy, Case 917, 13288 Marseille, France

Abstract

The combination of photothermal and magnetic functionalities in one biocompatible nanoformulation forms an attractive basis for developing multifunctional agents for biomedical theranostics. Here, we report the fabrication of silicon–iron (Si-Fe) composite nanoparticles (NPs) for theranostic applications by using a method of femtosecond laser ablation in acetone from a mixed target combining silicon and iron. The NPs were then transferred to water for subsequent biological use. From structural analyses, it was shown that the formed Si-Fe NPs have a spherical shape and sizes ranging from 5 to 150 nm, with the presence of two characteristic maxima around 20 nm and 90 nm in the size distribution. They are mostly composed of silicon with the presence of a significant iron silicide content and iron oxide inclusions. Our studies also show that the NPs exhibit magnetic properties due to the presence of iron ions in their composition, which makes the formation of contrast in magnetic resonance imaging (MRI) possible, as it is verified by magnetic resonance relaxometry at the proton resonance frequency. In addition, the Si-Fe NPs are characterized by strong optical absorption in the window of relative transparency of bio-tissue (650–950 nm). Benefiting from such absorption, the Si-Fe NPs provide strong photoheating in their aqueous suspensions under continuous wave laser excitation at 808 nm. The NP-induced photoheating is described by a photothermal conversion efficiency of 33–42%, which is approximately 3.0–3.3 times larger than that for pure laser-synthesized Si NPs, and it is explained by the presence of iron silicide in the NP composition. Combining the strong photothermal effect and MRI functionality, the synthesized Si-Fe NPs promise a major advancement of modalities for cancer theranostics, including MRI-guided photothermal therapy and surgery.

Funder

Ministry of Science and Higher Education of the Russian Federation

Russian Science Foundation

Innovation Protection Fund

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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