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Discriminating between absorption and scattering coefficients in optical characterisation measurements on gold nanoparticle based photoacoustic contrast agents

机译:基于金纳米粒子的光声造影剂的光学特性测量中吸收系数和散射系数的区分

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Plasmon resonant nanoparticles such as gold nanoshells and gold nanorods can be tuned to possess sharp interaction peaks in the near-infrared wavelength regions. These have great importance as contrast agents in photoacoustic imaging and as photothermal agents for therapeutic applications due to their high absorptions. While the optical properties of the particles are can be described using Mie theory and/or numerical methods such as the Discrete Dipole Approximation, discriminating between their optical absorption and scattering in experiments is not easy. In this paper we discuss for the first time a novel method based on a two-fiber spectrometer that allows measurement of the scattering and absorption coefficients of gold nanoparticles in solution.This technique, called Differential Path length Spectroscopy, has been developed earlier for measurement in highly diffusive media such as tissue. We demonstrate this concept on gold nanospheres and nanoshells of various sizes. We believe that this will develop into a fast and reliable method able to work on small samples (<1 ml) of nanoparticles to obtain scattering and absorbing spectra.
机译:可以将等离子共振纳米粒子(例如金纳米壳和金纳米棒)调整为在近红外波长区域中具有尖锐的相互作用峰。由于它们的高吸收性,它们作为光声成像中的造影剂和用于治疗应用的光热剂具有非常重要的意义。尽管可以使用Mie理论和/或数值方法(例如离散偶极子近似)描述粒子的光学特性,但在实验中区分它们的光学吸收和散射并不容易。在本文中,我们首次讨论了一种基于双纤维光谱仪的新方法,该方法可以测量溶液中金纳米颗粒的散射系数和吸收系数。 这项技术被称为差分路径长度光谱法,它是较早开发的,用于在诸如组织之类的高扩散性介质中进行测量。我们在各种大小的金纳米球和纳米壳上证明了这一概念。我们相信,这将发展成为一种快速可靠的方法,能够对小样品(<1 ml)纳米颗粒进行处理以获得散射和吸收光谱。

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