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Fundamental Examination of Nanoparticle Heating Kinetics Upon Near Infrared (NIR) Irradiation

机译:在近红外(NIR)辐照下纳米颗粒加热动力学的基础研究

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Near infrared (NIR) light, which spans wavelengths from ~700- 1100 ran holds particular promise in bionanotechnology-enabled applications because both NIR light and nanoparticles (NPs) have the potential for remote activation leading to exquisite localization and targeting scenarios. In this study, aqueous solutions of carbon and metal-based NPs (carbon black, single-walled carbon nanotubes, silver nanoparticles and copper nanoparticles) were exposed to continuous NIR laser (A = 1064 nm) irradiation at powers of 2.2W and 4.5W. The differential heating of bulk aqueous suspension of NPs with varying physicochemical properties revealed maximum temperatures of 67 °C with visible evidence of condensation and bubble formation. The basis of the NP heating is due to the strong intrinsic optical absorbance in the NIR spectral window and the transduction of this NIR photon energy into thermal energy. In this regard, UV-vis measurements can accurately predict NP heating kinetics prior to NIR irradiation. Further, a uniform thermodynamic heating model demonstrates closeagreement with the experimental data for the low NIR-absorbing NPs. However, the uniform thermodynamic heating model used in this study does not accurately portray the energy release upon localized NP heating because of bubble formation for the highly absorbing NPs. Therefore, this study reveals the differential heating kinetics of NPs excited with NIR with implications in the development of novel NIR-NP-based systems.
机译:波长范围约为700-1100纳米的近红外(NIR)光在采用仿生纳米技术的应用中具有特殊的前景,因为近红外(NIR)光和纳米颗粒(NP)均具有进行远程激活的潜力,从而可以实现精美的定位和目标定位。在这项研究中,碳和金属基纳米颗粒(炭黑,单壁碳纳米管,银纳米颗粒和铜纳米颗粒)的水溶液以2.2W和4.5W的功率暴露于连续NIR激光(A = 1064 nm)照射下。物理化学性质各异的NPs散装水悬浮液的差异加热显示最高温度为67°C,可见有冷凝和气泡形成的迹象。 NP加热的基础是由于NIR光谱窗口中强大的固有光学吸收率以及将此NIR光子能量转换为热能所致。在这方面,UV-vis测量可以在NIR辐照之前准确预测NP加热动力学。此外,均匀的热力学加热模型表明与低NIR吸收NP的实验数据非常吻合。但是,由于高吸收性NP的气泡形成,本研究中使用的均匀热力学加热模型不能准确地描述局部NP加热时的能量释放。因此,本研究揭示了被NIR激发的NPs的不同的加热动力学,这对基于新型NIR-NP的系统的开发具有重要意义。

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