The realization of a scalable architecture for quantum information processing is a major challenge for quantum science. A promising approach is based on emitters in nanostructures that are coupled by light. Here, we show that erbium dopants can be reproducibly integrated at well-defined lattice sites by implantation into pure silicon. We thus achieve a narrow inhomogeneous broadening, less than 1 GHz, strong optical transitions, and an outstanding optical coherence even at temperatures of 8 K, with an upper bound to the homogeneous linewidth of around 10 kHz. Our study thus introduces a promising materials platform for the implementation of on-chip quantum memories, microwave-to-optical conversion, and distributed quantum information proces...
Erbium-implanted silicon is promising for both photonic and quantum-technology platforms, since it p...
Quantum-based communication systems can potentially achieve the ultimate security from eavesdropping...
Optical quantum memories will enable technologies including long distance quantum communication and ...
A scalable platform for on-chip optical quantum networks will rely on standard top-down nanofabricat...
Erbium dopants in crystals exhibit highly coherent optical transitions well suited for solid-state o...
Recent advancements in quantum key distribution (QKD) protocols opened the chance to exploit nonlase...
Donor spins in silicon are highly competitive qubits for upcoming quantum technologies, offering com...
Wavelengths in the telecommunication window (approximately 1.25–1.65 μm) are ideal for quantum commu...
Rare earth quantum light-matter interfaces (QLMIs) are uniquely suited for various quantum communica...
Scalable quantum photonics require efficient single-photon emitters as well as low-loss reconfigurab...
With an assortment of narrow line-width transitions spanning the visible and IR spectrum and long sp...
The miniaturisation of transistors has made electronics faster, cheaper and more energy efficient. I...
Energy transfer in erbium doped optical waveguides based on silicon This thesis describes the energy...
The growing interest in optical quantum systems has led to the exploration of multiple platforms. T...
A new concept for an infrared waveguide detector based on silicon is introduced. It is fabricated us...
Erbium-implanted silicon is promising for both photonic and quantum-technology platforms, since it p...
Quantum-based communication systems can potentially achieve the ultimate security from eavesdropping...
Optical quantum memories will enable technologies including long distance quantum communication and ...
A scalable platform for on-chip optical quantum networks will rely on standard top-down nanofabricat...
Erbium dopants in crystals exhibit highly coherent optical transitions well suited for solid-state o...
Recent advancements in quantum key distribution (QKD) protocols opened the chance to exploit nonlase...
Donor spins in silicon are highly competitive qubits for upcoming quantum technologies, offering com...
Wavelengths in the telecommunication window (approximately 1.25–1.65 μm) are ideal for quantum commu...
Rare earth quantum light-matter interfaces (QLMIs) are uniquely suited for various quantum communica...
Scalable quantum photonics require efficient single-photon emitters as well as low-loss reconfigurab...
With an assortment of narrow line-width transitions spanning the visible and IR spectrum and long sp...
The miniaturisation of transistors has made electronics faster, cheaper and more energy efficient. I...
Energy transfer in erbium doped optical waveguides based on silicon This thesis describes the energy...
The growing interest in optical quantum systems has led to the exploration of multiple platforms. T...
A new concept for an infrared waveguide detector based on silicon is introduced. It is fabricated us...
Erbium-implanted silicon is promising for both photonic and quantum-technology platforms, since it p...
Quantum-based communication systems can potentially achieve the ultimate security from eavesdropping...
Optical quantum memories will enable technologies including long distance quantum communication and ...