Radiative Cooling of Surface-Modified Gold Nanorods upon Pulsed Infrared Photoexcitation.
Shao-Syuan GuoLi-Kang ChuPublished in: The journal of physical chemistry letters (2018)
Transient infrared emissions of gold nanorods capped with various materials (AuNR@X, X = CTAB, PSS, mPEG, and SiO2) upon ∼70-μs pulsed 1064 nm excitation of their longitudinal surface plasmonic bands were collected with a time-resolved step-scan Fourier-transform spectrometer. Comparing the observed emission contours with the blackbody radiation spectra revealed that parts of the additional emission intensity at low wavenumbers (1300-1000 cm-1) were attributed to the vibrational modes of the capping materials, suggesting that the photothermal energy of AuNRs can be thermalized not only via blackbody radiation but also via radiative and nonradiative processes of the capping materials. In addition, the infrared emission of AuNR@SiO2 was more prolonged (∼1 ms) than those of the other three (∼300 μs). The photothermal energy can be efficiently randomized to the internal degrees of freedom of the soft molecular capping materials but can be stored by the rigid ones, for example, SiO2, followed by extended radiative cooling.
Keyphrases
- photodynamic therapy
- energy transfer
- drug delivery
- computed tomography
- mass spectrometry
- cancer therapy
- multiple sclerosis
- high resolution
- density functional theory
- double blind
- open label
- solid state
- magnetic resonance imaging
- reduced graphene oxide
- randomized controlled trial
- single molecule
- drug release
- radiation induced
- cross sectional
- radiation therapy
- magnetic resonance
- risk assessment
- blood brain barrier
- quantum dots
- heavy metals
- placebo controlled
- phase ii
- phase iii
- cerebral ischemia