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光热对比的单粒子吸收光谱学。

Single-particle absorption spectroscopy by photothermal contrast.

机构信息

†Department of Chemistry, ‡Applied Physics Graduate Program, §Department of Electrical and Computer Engineering, Laboratory for Nanophotonics, Rice University, Houston, Texas 77005, United States.

出版信息

Nano Lett. 2015 May 13;15(5):3041-7. doi: 10.1021/nl504992h. Epub 2015 Apr 10.

Abstract

Removing effects of sample heterogeneity through single-molecule and single-particle techniques has advanced many fields. While background free luminescence and scattering spectroscopy is widely used, recording the absorption spectrum only is rather difficult. Here we present an approach capable of recording pure absorption spectra of individual nanostructures. We demonstrate the implementation of single-particle absorption spectroscopy on strongly scattering plasmonic nanoparticles by combining photothermal microscopy with a supercontinuum laser and an innovative calibration procedure that accounts for chromatic aberrations and wavelength-dependent excitation powers. Comparison of the absorption spectra to the scattering spectra of the same individual gold nanoparticles reveals the blueshift of the absorption spectra, as predicted by Mie theory but previously not detectable in extinction measurements that measure the sum of absorption and scattering. By covering a wavelength range of 300 nm, we are furthermore able to record absorption spectra of single gold nanorods with different aspect ratios. We find that the spectral shift between absorption and scattering for the longitudinal plasmon resonance decreases as a function of nanorod aspect ratio, which is in agreement with simulations.

摘要

通过单分子和单粒子技术消除样品异质性的影响已经推动了许多领域的发展。虽然无背景的荧光和散射光谱广泛应用,但记录吸收光谱却相当困难。在这里,我们提出了一种能够记录单个纳米结构纯吸收光谱的方法。我们通过将光热显微镜与超连续激光和一种创新的校准程序相结合,演示了在强散射等离子体纳米粒子上进行单粒子吸收光谱学的实现,该程序考虑了色差和与波长相关的激发功率。将吸收光谱与相同的单个金纳米粒子的散射光谱进行比较,揭示了吸收光谱的蓝移,这是由米氏理论预测的,但以前在测量吸收和散射总和的消光测量中无法检测到。通过覆盖 300nm 的波长范围,我们还能够记录具有不同纵横比的单个金纳米棒的吸收光谱。我们发现,纵向等离子体共振的吸收和散射之间的光谱位移随着纳米棒纵横比的增加而减小,这与模拟结果一致。

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