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Uffe Møller

Researcher at Technical University of Denmark

Publications -  42
Citations -  2185

Uffe Møller is an academic researcher from Technical University of Denmark. The author has contributed to research in topics: Supercontinuum & Photonic-crystal fiber. The author has an hindex of 15, co-authored 42 publications receiving 1974 citations. Previous affiliations of Uffe Møller include University of Copenhagen.

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Mid-infrared supercontinuum covering the 1.4–13.3 μm molecular fingerprint region using ultra-high NA chalcogenide step-index fibre

TL;DR: In this article, a record-breaking spectral coverage of 1.4-13.3 µm was achieved by launching intense ultra-short pulses into short pieces of ultra-high numerical aperture step-index chalcogenide glass optical fiber consisting of a GaAsSe cladding and an As2Se3 core.
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Investigation of aqueous alcohol and sugar solutions with reflection terahertz time-domain spectroscopy

TL;DR: The method is self-referenced and applicable at all incidence angles and for all polarizations of the incident terahertz radiation, and is a general method for the determination of the dielectric properties of especially liquids in environments where transmission measurements are difficult.
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Multi-milliwatt mid-infrared supercontinuum generation in a suspended core chalcogenide fiber

TL;DR: A low-loss suspended core As(38)Se(62) fiber with core diameter of 4.5 μm and a zero-dispersion wavelength of 3.5μm was used for mid-infrared supercontinuum generation and was in good correspondence with the calculated dispersion.
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Terahertz reflection spectroscopy of Debye relaxation in polar liquids [Invited]

TL;DR: In this paper, a review of the applicability of THz reflection spectroscopy in the identification of dangerous liquids is presented, and the knowledge of the dielectric function of aqueous mixtures can be used for inspection of liquids inside bottles.
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Thulium pumped mid-infrared 0.9-9μm supercontinuum generation in concatenated fluoride and chalcogenide glass fibers.

TL;DR: A novel approach for generating Mid-InfraRed SuperContinuum (MIR SC) by using concatenated fluoride and chalcogenide glass fibers pumped with a standard pulsed Thulium laser is theoretically demonstrated.