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Trapped Ion Quantum Computing
Reversing Annealing-Induced Optical Loss in Diamond Microcavities
arXiv
Authors: Vinaya K. Kavatamane, Natalia C. Carvalho, Ahmas El-Hamamsy, Elham Zohari, Paul E. Barclay
Year
2025
Paper ID
51872
Status
Preprint
Abstract Read
~2 min
Abstract Words
145
Citations
N/A
Abstract
A key challenge for quantum photonic technologies based on spin qubits is the creation of optically active defects in photonic resonators. Several of the most promising defects for quantum applications are hosted in diamond, and are commonly created through ion implantation and annealing at high temperatures and high vacuum. However, the impact of annealing on photonic resonator quality factor, a critical parameter governing their coupling to defects, has not been reported. In this work, we characterize the effect of annealing at temperatures >1200°C in high vacuum on the quality factors of diamond microdisk resonators. We investigate the optical losses associated with a non-diamond layer formed during annealing, and use Raman spectroscopy to analyze the resonator surface morphology and demonstrate that tri-acid cleaning can restore their optical quality factors. These results show the viability of creating defects in pre-fabricated diamond resonators without degrading their optical properties.
Why This Paper Matters
- This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
- It adds a 2025 reference point for readers tracking recent quantum research.
- A key challenge for quantum photonic technologies based on spin qubits is the creation of optically active defects in photonic resonators.
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