Research projects
Research projects
Our group is actively involved in numerous coordinated and individual research projects to advance new quantum technologies and research into quantum materials. Here we provide an overview of the projects, research objectives and the consortia behind them.
Cavity-Moiré Physics of Interlayer Excitons
As part of the DFG Priority Programme SPP2244 "2dMP", we are investigating atomically thin semiconductors that are stacked on top of each other at a specific twist angle. In the process, interlayer excitons can form - optically active, composite particles that are distributed between the layers of the heterostructure. Their electronic and optical properties can be specifically influenced by the choice of material combination. At the same time, the twist angle creates a superimposed potential landscape that enables analogies to the Hubbard physics of lattice models.
Together with our experimental partners at the University of Oldenburg and TU Berlin, we are investigating the tunable optical properties of moiré heterostructures in microresonators to study quantum phase transitions, exciton-polariton condensation and fermionisation of bosonic quasiparticles on a highly controllable semiconductor platform.
QR.N
The BMBF's nationally funded Quantum Repeater.Link (QR.N) network aims to realise a quantum repeater prototype - a key technology for future quantum networks such as the quantum internet.
Our group acts as an interface between quantum information theory and the development of quantum repeater protocols on the one hand and the experimental semiconductor hardware platform on the other. We develop methods to simulate the implementation of quantum repeater protocols, both with conventionally entangled states and with multipartite entangled photon-based cluster states.
Machine Learning on Quantum Systems
Quantum machine learning (QML) is becoming increasingly important, especially due to its applicability to NISQ technologies. In this project, we investigate the potential of QML algorithms that can be executed on available quantum computing hardware and compare their capabilities and performance with machine learning methods based on quantum artificial neural networks.
The project is funded by the Quantum Fellowship Programme by the DLR Quantum Computing Initiative and is being carried out in collaboration with Prof. Dr Meike List from the DLR Institute for Satellite Geodesy and Inertial Sensor Technology in Bremen.
QNLP
Quantum Natural Language Processing (QNLP) leverages the properties of quantum systems to develop models for the processing of human natural languages.
Despite the rapid and powerful rise of intelligent natural language processing (NLP) applications, such as translators, text generators, etc, the methods used in these applications still face challenges in fully capturing the complexity of natural languages and reaching human-level capabilities, such as the diverse ways humans understand and use language. They still face the inability to understand complex linguistic contexts and perform difficult linguistic tasks (For text generation, these limitations are temporarily addressed by a technique known as prompt engineeringbut it is not highly efficient and is not considered a long-term solution). Another issue with intelligent text processing systems is time complexity, as these models are trained on massive text corpora, making the process highly time-consuming and computationally expensive.
Our project on QNLP aims at developing, implementing, and benchmarking quantum models to address the aforementioned issues. By harnessing quantum superposition and entanglement, these models could be more innovative and effective for intelligent applications in natural language processing, potentially outperforming classical methods in understanding context and reducing computational overhead. The project is funded by the DAAD (German Academic Exchange Service).
Completed projects
QUANTERA – “EQUAISE – Enabling QUAntum Information through the Scalability of Engineered Quantum Materials”, December 2021
DFG/ANR research grant “Photonic Quantum Reservoir Computing”, October 2021
BMBF “Quantum Repeater Link – QR.X”, project “Quantum-optical protocol simulation: generation of entanglement using quantum-dot molecules”, July 2021
DFG SPP2244 on 2D materials – “Light-Matter Coupling and Cavity-QED with Moiré Excitons in van der Waals Heterostructures”, 9/2020
University of Bremen Central Research Funding – Postdoctoral Funding ( applicant: Dr Lohof) “Generation and detection of genuine multipartite entanglement in the quantum-optical emission properties of solid-state cavity QED systems”, 9/2020
DAAD Research Fellowship “Dissipation-resistant multipartite entanglement in coupled-cavity arrays”, 2/2019
DFG Research Grant “Quantum-Optical Models for Nanolasers and Nanolaser Arrays”, 4/2017
DFG Research Training Group “Quantum Mechanical Materials Modelling”, project “Optical Properties of Transition Metal Dichalcogenides”, 5/2016
DFG Individual Research Post “Single Quantum Dot Laser”, 5/2015