CP

Christopher Panuski

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3 records found

Journal article (2024) - Valeria Saggio, Carlos Errando-Herranz, Samuel Gyger, Christopher Panuski, Mihika Prabhu, Lorenzo De Santis, Ian Christen, Connor Gerlach, Marco Colangelo, More authors...
Artificial atoms in solids are leading candidates for quantum networks, scalable quantum computing, and sensing, as they combine long-lived spins with mobile photonic qubits. Recently, silicon has emerged as a promising host material where artificial atoms with long spin coherence times and emission into the telecommunications band can be controllably fabricated. This field leverages the maturity of silicon photonics to embed artificial atoms into the world’s most advanced microelectronics and photonics platform. However, a current bottleneck is the naturally weak emission rate of these atoms, which can be addressed by coupling to an optical cavity. Here, we demonstrate cavity-enhanced single artificial atoms in silicon (G-centers) at telecommunication wavelengths. Our results show enhancement of their zero phonon line intensities along with highly pure single-photon emission, while their lifetime remains statistically unchanged. We suggest the possibility of two different existing types of G-centers, shedding new light on the properties of silicon emitters. ...
Conference paper (2023) - Valeria Saggio, Carlos Errando-Herranz, Samuel Gyger, Connor Gerlach, Christopher Panuski, Mihika Prabhu, Lorenzo De Santis, Dalia Ornelas-Huerta, Ian Christen, More authors...
We show enhanced single-photon emission from artificial atoms in silicon by coupling them to cavities with high quality factors and small mode volumes, thus enabling enhanced light-matter interactions which are crucial for quantum technologies. ...
Conference paper (2022) - Carlos Errando-Herranz, Connor Gerlach, Lorenzo De Santis, Christopher Panuski, Mihika Prabhu, Hamza Raniwala, Ian Christen, Dirk Englund
Optical quantum technologies require strong light-matter interaction. We couple silicon color center ensembles to high-Q/V cavities and show enhanced emission in the telecommunications O-band. ...