Nanoscale steady-state temperature gradients within polymer nanocomposites undergoing continuous-wave photothermal heating from gold nanorods

纳米棒 光热治疗 纳米尺度 材料科学 纳米复合材料 聚合物纳米复合材料 聚合物 纳米技术 温度梯度 稳态(化学) 共轭体系 胶体金 连续波 纳米颗粒 复合材料 光学 化学 物理化学 物理 量子力学 激光器
作者
Somsubhra Maity,Wei‐Chen Wu,Joseph B. Tracy,Laura Clarke,Jason Bochinski
出处
期刊:Nanoscale [The Royal Society of Chemistry]
卷期号:9 (32): 11605-11618 被引量:29
标识
DOI:10.1039/c7nr04613h
摘要

Anisotropically-shaped metal nanoparticles act as nanoscale heaters via excitation of a localized surface plasmon resonance, utilizing a photothermal effect which converts the optical energy into local heat. Steady-state temperatures within a polymer matrix embedded with gold nanorods undergoing photothermal heating using continuous-wave excitation are measured in the immediate spatial vicinity of the nanoparticle (referred to as the local temperature) from observing the rate of physical rotation of the asymmetric nanoparticles within the locally created polymer melt. Average temperatures across the entire (mostly solid) sample (referred to as the global temperature) are simultaneously observed using a fluorescence method from randomly dispersed molecular emitters. Comparing these two independent measurements in films having varying concentrations of nanorods reveals the interplay between the local and global temperatures, clearly demonstrating the capability of these material samples to sustain large steady-state spatial temperature gradients when experiencing continuous-wave excitation photothermal heating. These results are discussed quantitatively. Illustrative imaging studies of nanofibers under photothermal heating also support the presence of a large temperature gradient. Photothermal heating in this manner has potential utility in creating unique thermal processing conditions for outcomes such as driving chemical reactions, inducing crystallinity changes, or enhancing degradation processes in a manner unachievable by conventional heating methods.
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