Gold nanoparticles: Optical properties and implementations in cancer diagnosis and photothermal therapy
Золотые наночастицы: оптические свойства и применение в диагностике рака и фототермической терапии
2010-01-01
SCID: 54.1/ebburkv4
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cancer diagnosiscancer imaginggold nanoparticlesphotothermal therapysurface plasmon resonance
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Abstract (AI)
Currently a popular area in nanomedicine is the implementation of plasmonic gold nanoparticles for cancer diagnosis and photothermal therapy, attributed to the intriguing optical properties of the nanoparticles. The surface plasmon resonance, a unique phenomenon to plasmonic (noble metal) nanoparticles leads to strong electromagnetic fields on the particle surface and consequently enhances all the radiative properties such as absorption and scattering. Additionally, the strongly absorbed light is converted to heat quickly via a series of nonradiative processes. In this review, we discuss these important optical and photothermal properties of gold nanoparticles in different shapes and structures and address their recent applications for cancer imaging, spectroscopic detection and photothermal therapy.
Key Findings
1
Gold nanoparticles have demonstrated applications in cancer imaging, spectroscopic detection, and photothermal therapy.
2
Gold nanoparticles rapidly convert strongly absorbed light into heat through nonradiative processes, enabling photothermal therapeutic applications.
3
Plasmonic gold nanoparticles exhibit surface plasmon resonance, generating strong surface electromagnetic fields that enhance absorption, scattering, and other radiative properties.
4
The review examines how different gold nanoparticle shapes and structures influence their optical and photothermal properties.
5
Their distinctive optical and heat-generating behavior supports integrated nanomedicine strategies for cancer diagnosis and treatment.
Research Object
Plasmonic gold nanoparticles in different shapes and structures
Research Subject
Optical and photothermal properties and their applications in cancer imaging, spectroscopic detection, and photothermal therapy
Publication Details
Publication Date
2010-01-01
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