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February 22, 2026Bulletin of the Russian Academy of Sciences Physics0 citations

Near-Infrared Photothermal Efficient Ge Nanoparticles Synthesized via Nanosecond Laser Ablation in Liquid

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SGS. O. GurbatovDBD. E. BanniyASA. V. Shevlyagin

Key Points

  • This study aims to evaluate germanium nanoparticles as a candidate for effective photothermal therapy in cancer treatment.
  • Synthesis of germanium nanoparticles using pulsed laser ablation in liquid (PLAL) technique.
  • Evaluation of heating efficiency using 785 nm laser irradiation and monitoring of temperature changes via Raman band shifts.
  • Assessment of photothermal effects in an isopropanol suspension with varying concentrations of nanoparticles.
  • Demonstrated maximum temperature increase of 480 K at 3 mW/μm2 laser power density for 300 nm Ge NPs.
  • Heating efficiency of germanium NPs exceeded that of comparable silicon NPs by more than four times.
  • Achieved up to 17% light-to-heat conversion efficiency with temperature increases between 5–50°C based on nanoparticle concentration.

Abstract

We have explored germanium nanoparticles (Ge NPs) as a potential material for photothermal therapy in cancer treatment. Given the high intrinsic optical absorption of bulk germanium in the near-infrared (NIR-I) biological transparency window, pulsed laser ablation in liquid (PLAL) was employed to produce a colloid of Ge NPs with a Mie-resonant size in the range of 100–500 nm. The heating efficiency of individual Ge NPs was evaluated using 785 nm laser irradiation, while the temperature-dependent shift in the Ge–Ge Raman band was monitored simultaneously. The maximum estimated temperature increase of 480 K at a laser power density of 3 mW/μm2 for Ge NPs with a diameter of 300 nm was confirmed with no signs of oxidation or structural degradation. This value is more than four times higher than that of pure silicon NPs of a similar size. Laser heating (808 nm, 4.5 W) of an isopropanol suspension containing Ge NPs demonstrated that their resonant size enables grounds for mild photothermal therapy with a linear light-to-heat conversion efficiency response to NPs concentration reaching 17%, and the potential to heat the suspension by ∆T = 5–50°C within an NPs concentration range of 1.25–10 μg/mL.

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Cite This Study

Gurbatov et al. (2025) studied this question.

synapsesocial.com/papers/699a9cc6482488d673cd290fhttps://doi.org/10.1134/s1062873825714837
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