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METHODS AND DEVICES FOR MEASUREMENTS USING PUMP-PROBE SPECTROSCOPY IN HIGH-Q MICROCAVITIES

机译:在高Q微腔中使用泵探针光谱进行测量的方法和设备

摘要

The use of optical micro cavities, high-Q resonators and slow-light structures as tools for detecting molecules and probing conformations and measuring polarizability and anisotropy of molecules and molecular assemblies using a pump-probe approach is described. Resonances are excited simultaneously or sequentially with pump and probe beams coupled to the same microcavity, so that a pump beam wavelength can be chosen to interact with molecules adsorbed to the microcavity surface, whereas a probe beam wavelength can be chosen to non-invasively measure pump-induced perturbations. The induced perturbations are manifest due to changes of resonance conditions and measured from changes in transfer characteristics or from changes of the scattering spectra of a micocavity-waveguide system. The perturbations induced by the pump beam may be due to polarizability changes, changes in molecular conformation, breakage or formation of chemical bonds, triggering of excited states, and formation of new chemical species. Furthermore, heat may be generated due to absorption of the pump beam. Furthermore, the use resonant modes with different states of polarization allows for measurements of polarizability and its anisotropy in samples interacting with the optical device.
机译:描述了将光学微腔,高Q谐振器和慢光结构用作检测分子和探测构象以及使用泵浦探针方法测量分子和分子组装体的极化率和各向异性的工具。与耦合到同一微腔的泵浦和探测光束同时或顺序地激发共振,因此可以选择泵浦光束的波长与吸附在微腔表面的分子相互作用,而可以选择探测光束的波长来无创地测量泵浦引起的扰动。所引起的扰动是由于共振条件的变化而明显的,并且是根据传递特性的变化或微腔波导系统的散射光谱的变化来测量的。泵浦光束引起的扰动可能是由于极化率变化,分子构象变化,化学键断裂或形成,激发态的触发以及新化学物种的形成。此外,由于泵浦光束的吸收,可能产生热量。此外,使用具有不同偏振态的共振模式可以测量与光学器件相互作用的样品中的偏振性及其各向异性。

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