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Dominik Beutel

Researcher at Karlsruhe Institute of Technology

Publications -  27
Citations -  227

Dominik Beutel is an academic researcher from Karlsruhe Institute of Technology. The author has contributed to research in topics: Metamaterial & Chemistry. The author has an hindex of 4, co-authored 14 publications receiving 65 citations.

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Helicity-Preserving Optical Cavity Modes for Enhanced Sensing of Chiral Molecules

TL;DR: In this paper, a cavity composed of two parallel arrays of helicity-preserving silicon disks is proposed to enhance the dominant handedness of chiral molecules by circular dichroism (CD), the normalized difference between their optical response to incident left and right-handed circularly polarized light.
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Computation of Electromagnetic Properties of Molecular Ensembles.

TL;DR: In this paper, a methodology for efficiently computing the electromagnetic response of molecular ensembles is presented. The methodology is based on the link that we establish between quantum-chemical simulations and the transfer matrix (T-matrix) approach, a common tool in physics and engineering.
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Efficient simulation of biperiodic, layered structures based on the T-matrix method

TL;DR: In this paper, a full-wave optical method was proposed to efficiently compute the scattering of light at objects that are arranged in biperiodic arrays, where the scattering properties of the individual objects in each array are described by the T-matrix formalism.
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Tunable photonic devices by 3D laser printing of liquid crystal elastomers

TL;DR: In this article, the role of birefringence of liquid crystal elastomers in 3D laser printing is addressed and theoretically modelled, and they demonstrate how LCE can be used as a flexible substrate for arrays of rigid photonic elements and as a material for tunable photonic structures itself.
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Multi-Photon 4D Printing of Complex Liquid Crystalline Microstructures by In Situ Alignment Using Electric Fields

TL;DR: In this paper, an approach is presented to align the direction of liquid crystal networks or elastomers in situ during multi-photon laser printing for each voxel in three dimensions by applying a quasi-static electric field with variable orientation.