标题: | 双光子共振增强雷射光镊捕捉奈米粒子效率之实验及理论探讨 Enhanced optical confinement of nanoparticles by two-photon resonance: experiment and theory |
作者: | 赖安妮 廖奕翰 Kittiravechote, Aungtinee Liau,Ian 应用化学系硕博士班 |
关键字: | 双光子共振;增强雷射光镊捕捉;奈米粒子;optical confinement;two-photon resonance;nanoparticles;doping;pulsed laser |
公开日期: | 2017 |
摘要: | 虽然利用光镊操控微小粒子已经发展许久,但此方法对于奈米尺度粒子的操控仍是一大挑战,其中针对极化率小的奈米粒子更是如此。为了解决这个问题,我博士班的工作即专注在探讨增强光镊对介电奈米物质操控力的方法,并且提出以双光子共振为基础的方法。在本论文中,我们将展示与定量光强度与波长对双光子共振光镊的影响,并且,我们将透过光阱中捕捉的奈米粒子数量来对光镊强度进行评估,而非过往文献中以单一粒子来进行评估。论文之结论如下:(1)利用波长为染料掺杂聚合物粒子吸收峰两倍的皮秒脉冲雷射,我们首次展现了双光子共振能增强光镊对粒子的捕捉能力;(2)造成光镊捕捉染料掺杂聚合物粒子能力增强的原因,部分为雷射之光场与聚合物粒子之掺杂染料间的有效折射率受双光子共振而增强;(3)此论文所发现光镊增强的独特光谱特性,可以透过双光子共振之分散态的极化率实部与劳仑兹态的极化率虚部进行解释。我们认为这里提出的研究结果不但有助于对双光子共振增强光镊机制的了解,也提供了对奈米粒子操控、诱导聚集以及透过掺杂染料光谱特性不同而进行奈米粒子分类的可能性。 Investigation of the confinement of nanoparticles with an optical field is important to advance our understanding of the crystallization, nucleation and growth of nanomaterials. Compared to metallic nanoparticles made of gold or silver, the polarizability of dielectric nanoparticles of comparable dimension is much smaller, and hence, optical trapping of dielectric nanoparticles remains challenging. Toward this end, this Ph.D. work focuses on the exploration of a novel mechanism, two-photon resonance, to enhance optical trapping of dielectric nanoparticles. In particular, we not only demonstrate an enhanced optical confinement of nanoparticles with a picosecond (ps) pulsed, near-infrared (NIR) laser, but also characterize its dependence on the intensity and wavelength of the trapping laser. Distinct from most of preceding researches that address mainly the trapping of single nanoparticle, this research concerns an increased number of nanoparticles confined near the laser focus through the use of laser trapping. In specific, we demonstrate for the first time that (1) two-photon resonance increases the capability to confine numerous dye-doped polymeric nanoparticles through the employment of a ps-pulsed, NIR laser with its half-wavelength particularly falling within the absorption band of the dopant, (2) the enhanced confinement of doped nanoparticles is facilitated in part through an increased effective refractive index resulting from two-photon resonance between the optical field of laser and the dopant of nanobead, and (3) the distinctive spectral dependence of the enhanced confinement of doped nanoparticles is explained with the dispersively shaped real polarizability and the Lorentzianly shaped imaginary polarizability in the vicinity of two-photon resonance. We envisage that our approach not only advances the understanding of a novel mechanism of optical confinement mediated by two-photon resonance but also would arise new applications such as controlling the confinement (or aggregation) of nanomaterials and sorting of nanoparticles based on their spectral properties. |
URI: | http://etd.lib.nctu.edu.tw/cdrfb3/record/nctu/#GT079958803 http://hdl.handle.net/11536/142551 |
显示于类别: | Thesis |