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Dominik Heiss

Researcher at Eindhoven University of Technology

Publications -  49
Citations -  2304

Dominik Heiss is an academic researcher from Eindhoven University of Technology. The author has contributed to research in topics: Photonics & Photonic integrated circuit. The author has an hindex of 17, co-authored 49 publications receiving 2120 citations. Previous affiliations of Dominik Heiss include University of Cambridge & Infineon Technologies.

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Optically programmable electron spin memory using semiconductor quantum dots

TL;DR: This work demonstrates a single electron spin memory device in which the electron spin can be programmed by frequency selective optical excitation, and directly measure the intrinsic spin flip time and its dependence on magnetic field.
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An introduction to InP-based generic integration technology

TL;DR: The paper explains the concept of generic photonic integration technology using the technology developed by the COBRA research institute of TU Eindhoven as an example, and it describes the current status and prospects of generic InP-based integration technology.
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Observation of extremely slow hole spin relaxation in self-assembled quantum dots

TL;DR: In this paper, the hole spin relaxation dynamics in small ensembles of self-assembled InGaAs quantum dots are measured as a function of external magnetic field and lattice temperature.
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Waveguide-coupled nanopillar metal-cavity light-emitting diodes on silicon.

TL;DR: A metal-cavity light-emitting diode coupled to a waveguide on silicon shows on-chip external quantum efficiency in the 10−4–10−2 range at tens of microamp current injection levels, which greatly exceeds the performance of any waveguide-coupled nanoscale light source integrated on silicon in this current range.
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Spin-orbit torque opposing the Oersted torque in ultrathin Co/Pt bilayers

TL;DR: In this article, current-induced torques in ultrathin Co/Pt bilayers were investigated using an electrically driven ferromagnetic resonance technique, and the angle dependence of the resonances, detected by a rectification effect as a voltage, was analyzed to determine the symmetries and relative magnitudes of the spin-orbit torques.