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Sven Ramelow

Explore the profile of Sven Ramelow including associated specialties, affiliations and a list of published articles. Areas
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Articles 27
Citations 369
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Recent Articles
1.
Kaufmann P, Chrzanowski H, Vanselow A, Ramelow S
Opt Express . 2022 Feb; 30(4):5926-5936. PMID: 35209544
Mid-infrared (mid-IR) spectroscopy is a crucial workhorse for a plethora of analytical applications and is suitable for diverse materials, including gases, polymers or biological tissue. However, this technologically significant wavelength...
2.
Kviatkovsky I, Chrzanowski H, Ramelow S
Opt Express . 2022 Feb; 30(4):5916-5925. PMID: 35209543
Quantum imaging with undetected photons (QIUP) has recently emerged as a new powerful imaging tool. Exploiting the spatial entanglement of photon pairs, it allows decoupling of the sensing and detection...
3.
Mann F, Chrzanowski H, Ramelow S
Opt Lett . 2021 Jul; 46(13):3049-3052. PMID: 34197376
Low-noise quantum frequency conversion in periodically poled nonlinear crystals has proved challenging when the pump wavelength is shorter than the target wavelength. This is-at least in large part-a consequence of...
4.
Placke M, Ramelow S
Opt Lett . 2020 Dec; 45(24):6763-6766. PMID: 33325891
Aluminum gallium arsenide has highly desirable properties for integrated parametric optical interactions: large material nonlinearities, maturely established nanoscopic structuring through epitaxial growth and lithography, and a large bandgap for broadband...
5.
Kviatkovsky I, Chrzanowski H, Avery E, Bartolomaeus H, Ramelow S
Sci Adv . 2020 Oct; 6(42). PMID: 33055168
Owing to its capacity for unique (bio)-chemical specificity, microscopy with mid-infrared (IR) illumination holds tremendous promise for a wide range of biomedical and industrial applications. The primary limitation, however, remains...
6.
Mottola R, Buser G, Muller C, Kroh T, Ahlrichs A, Ramelow S, et al.
Opt Express . 2020 Mar; 28(3):3159-3170. PMID: 32121989
We present an efficient and robust source of photons at the Rb D1-line (795 nm) with a narrow bandwidth of δ = 226(1) MHz. The source is based on non-degenerate,...
7.
Vanselow A, Kaufmann P, Chrzanowski H, Ramelow S
Opt Lett . 2019 Oct; 44(19):4638-4641. PMID: 31568405
Photon pairs from spontaneous parametric down-conversion (SPDC) are important for a wide range of quantum optics experiments with spectral properties such as their bandwidths often being a crucial concern. Here...
8.
Ramelow S, Farsi A, Vernon Z, Clemmen S, Ji X, Sipe J, et al.
Phys Rev Lett . 2019 May; 122(15):153906. PMID: 31050544
We demonstrate that nondegenerate four-wave mixing in a Si_{3}N_{4} microring resonator can result in a nonlinear coupling rate between two optical fields exceeding their energy dissipation rate in the resonator,...
9.
Clemmen S, Farsi A, Ramelow S, Gaeta A
Opt Lett . 2018 May; 43(9):2138-2141. PMID: 29714765
We demonstrate a photon buffer for quantum communication systems via a quantum frequency conversion-dispersion technique based on Bragg scattering four-wave mixing. The all-fiber setup is capable of imparting all-optical and...
10.
Joshi C, Farsi A, Clemmen S, Ramelow S, Gaeta A
Nat Commun . 2018 Mar; 9(1):847. PMID: 29487312
Parametric single-photon sources are well suited for large-scale quantum networks due to their potential for photonic integration. Active multiplexing of photons can overcome the intrinsically probabilistic nature of these sources,...