Group-IV color centers in diamond are a promising light-matter interface for quantum networking devices. The negatively charged tin-vacancy center (SnV) is particularly interesting, as its large spin-orbit coupling offers strong protection against phonon dephasing and robust cyclicity of its optical transitions toward spin-photon-entanglement schemes. Here, we demonstrate multiaxis coherent control of the SnV spin qubit via an all-optical stimulated Raman drive between the ground and excited states. We use coherent population trapping and optically driven electronic spin resonance to confirm coherent access to the qubit at 1.7 K and obtain spin Rabi oscillations at a rate of ω/2π=19.0(1) MHz. All-optical Ramsey interferometry reveals a spin...
The development of quantum computers is a monumental challenge for modern physics. One proposed path...
The nitrogen-vacancy (NV) color center in diamond has rapidly emerged as an important solid-state sy...
Multi-qubit systems are crucial for the advancement and application of quantum science. Such systems...
Group-IV color centers in diamond are a promising light-matter interface for quantum networking devi...
Group-IV color centers in diamond are a promising light-matter interface for quantum networking devi...
The study of individual quantum systems in solids, for use as quantum bits (qubits) and probes of de...
Solid-state quantum emitters that couple coherent optical transitions to long-lived spin qubits are ...
The nitrogen-vacancy (NV) center in diamond has garnered great interest over the past decade as its ...
Quantum information processing (QIP) with solid state spin qubits strongly depends on the efficient ...
The realization of quantum networks critically depends on establishing efficient, coherent light-mat...
Spin impurities in diamond have emerged as a promising building block in a wide range of solid-state...
The silicon-vacancy center in diamond offers attractive opportunities in quantum photonics due to it...
Robust spin-photon interfaces in solids are essential components in quantum networking and sensing t...
The negatively charged tin-vacancy (SnV-) center in diamond is a promising solid-state qubit for app...
Nitrogen-vacancy centers in diamond typically have spin-conserving optical transitions, a feature wh...
The development of quantum computers is a monumental challenge for modern physics. One proposed path...
The nitrogen-vacancy (NV) color center in diamond has rapidly emerged as an important solid-state sy...
Multi-qubit systems are crucial for the advancement and application of quantum science. Such systems...
Group-IV color centers in diamond are a promising light-matter interface for quantum networking devi...
Group-IV color centers in diamond are a promising light-matter interface for quantum networking devi...
The study of individual quantum systems in solids, for use as quantum bits (qubits) and probes of de...
Solid-state quantum emitters that couple coherent optical transitions to long-lived spin qubits are ...
The nitrogen-vacancy (NV) center in diamond has garnered great interest over the past decade as its ...
Quantum information processing (QIP) with solid state spin qubits strongly depends on the efficient ...
The realization of quantum networks critically depends on establishing efficient, coherent light-mat...
Spin impurities in diamond have emerged as a promising building block in a wide range of solid-state...
The silicon-vacancy center in diamond offers attractive opportunities in quantum photonics due to it...
Robust spin-photon interfaces in solids are essential components in quantum networking and sensing t...
The negatively charged tin-vacancy (SnV-) center in diamond is a promising solid-state qubit for app...
Nitrogen-vacancy centers in diamond typically have spin-conserving optical transitions, a feature wh...
The development of quantum computers is a monumental challenge for modern physics. One proposed path...
The nitrogen-vacancy (NV) color center in diamond has rapidly emerged as an important solid-state sy...
Multi-qubit systems are crucial for the advancement and application of quantum science. Such systems...