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Related Concept Videos

Plasmonic Photothermal Cancer Therapy: Nanoparticle-embedded Tumor-tissue-mimicking Phantoms for Visualizing Photothermal Temperature Distribution06:42

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This article presents the protocol for preparing tumor-tissue phantoms that replicate optical properties for plasmonic photothermal therapy. It details phantom preparation, photothermal evaluations, and validation of the developed numerical model based on photothermal temperature measurements for assessing therapeutic parameters, offering an ethical, cost-effective alternative to in vivo studies for preliminary...
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Here, we describe a protocol for synthesis of magneto-plasmonic nanoparticles with a strong magnetic moment and a strong near-infrared (NIR) absorbance. The protocol also includes antibody conjugation to the nanoparticles through the Fc moiety for various biomedical applications which require molecular specific...
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Related Experiment Video

Updated: Jan 19, 2026

Plasmonic Photothermal Cancer Therapy: Nanoparticle-embedded Tumor-tissue-mimicking Phantoms for Visualizing Photothermal Temperature Distribution
06:42

Plasmonic Photothermal Cancer Therapy: Nanoparticle-embedded Tumor-tissue-mimicking Phantoms for Visualizing Photothermal Temperature Distribution

Published on: May 9, 2025

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Plasmonic Photothermal Nanoparticles for Biomedical Applications.

Minho Kim1, Jung-Hoon Lee2, Jwa-Min Nam1

  • 1Department of Chemistry Seoul National University Seoul 08826 South Korea.

Advanced Science (Weinheim, Baden-Wurttemberg, Germany)
|September 12, 2019
PubMed
Summary

Plasmonic nanoparticles offer exciting biomedical potential through their photothermal properties. Further understanding and control are key for advancing sensing, imaging, therapy, and drug delivery applications.

Keywords:
metal nanoparticlesphothermal effectphotothermal therapyplasmonic nanoparticlestheranostics

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Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Materials Science

Background:

  • Plasmonic nanoparticles exhibit tunable optical properties and photothermal effects, making them attractive for various scientific fields.
  • Metallic nanoparticles' photothermal capabilities are of significant interest in medicine due to their interaction with external light sources.

Purpose of the Study:

  • To summarize recent advancements in understanding and applying plasmonic photothermal nanoparticles.
  • To explore applications in sensing, imaging, therapy, and drug delivery.
  • To discuss future research directions for photothermal nanoparticles in clinical settings.

Main Methods:

  • Review of recent scientific literature on plasmonic photothermal nanoparticles.
  • Analysis of fundamental properties and photothermal effects.
  • Exploration of applications in diagnosis, treatment, and theranostics.

Main Results:

  • Plasmonic nanoparticles have shown significant progress in energy, catalysis, optics, biotechnology, and medicine.
  • Photothermal nanoparticles are increasingly utilized in biomedical applications, especially photothermal therapy.
  • Enhanced understanding and control of photothermal nanoparticles are crucial for realizing their full clinical potential.

Conclusions:

  • Plasmonic photothermal nanoparticles are versatile tools with expanding applications in biomedicine.
  • Continued research into their fundamental properties and controlled manipulation is essential.
  • Future work should focus on diagnosis, treatment, and theranostic applications for clinical translation.