All-optical noise spectroscopy of a solid-state spin
- URL: http://arxiv.org/abs/2109.03405v4
- Date: Mon, 27 Feb 2023 15:19:06 GMT
- Title: All-optical noise spectroscopy of a solid-state spin
- Authors: Demitry Farfurnik, Harjot Singh, Zhouchen Luo, Allan S. Bracker,
Samuel G. Carter, Robert M. Pettit, and Edo Waks
- Abstract summary: Noise spectroscopy elucidates the fundamental noise sources in spin systems.
Existing techniques for noise spectroscopy that rely on microwave fields become infeasible when the microwave power is too weak to generate Rabi rotations of the spin.
Here, we demonstrate an alternative all-optical approach to performing noise spectroscopy.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Noise spectroscopy elucidates the fundamental noise sources in spin systems,
thereby serving as an essential tool toward developing spin qubits with long
coherence times for quantum information processing, communication, and sensing.
But existing techniques for noise spectroscopy that rely on microwave fields
become infeasible when the microwave power is too weak to generate Rabi
rotations of the spin. Here, we demonstrate an alternative all-optical approach
to performing noise spectroscopy. Our approach utilizes coherent Raman
rotations of the spin state with controlled timing and phase to implement
Carr-Purcell-Meiboom-Gill pulse sequences. Analyzing the spin dynamics under
these sequences enables us to extract the noise spectrum of a dense ensemble of
nuclear spins interacting with a single spin in a quantum dot, which has thus
far only been modeled theoretically. By providing spectral bandwidths of over
100 MHz, our approach enables the studies of spin dynamics and decoherence for
a broad range of solid-state spin qubits.
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