Ultrafast opto-magnetic effects induced by nitrogen-vacancy centers in diamond crystals
Ryosuke Sakurai, Yuta Kainuma, Toshu An, Hidemi Shigekawa, and Muneaki, Hase

TL;DR
This paper demonstrates ultrafast opto-magnetic effects in diamond NV centers, enabling quantum sensing with sub-picosecond time resolution by leveraging the inverse Cotton-Mouton effect induced by NV electron spins.
Contribution
It introduces a novel ultrafast opto-magnetic response in diamond NV centers, significantly enhancing the temporal resolution of quantum sensing technologies.
Findings
Observation of sub-picosecond optical response due to NV centers
Helicity and quadratic power dependence of the inverse Cotton-Mouton effect
Guidelines for high-resolution spatial-time quantum sensing
Abstract
The current generation of quantum sensing technologies using color centers in diamond crystals is primarily based on the principle that the resonant microwave frequency of the luminescence between quantum levels of the nitrogen-vacancy (NV) center varies with temperature, electric and magnetic fields. This principle enables us to measure, for instance, magnetic and electric fields, as well as local temperature with nanometer resolution in conjunction with a scanning probe microscope (SPM). However, the time resolution of conventional quantum sensing technologies has been limited to microseconds due to the limited luminescence lifetime. Here, we investigate ultrafast opto-magnetic effects in diamond crystals containing nitrogen-vacancy NV centers to improve the time resolution of quantum sensing to sub-picosecond time scales. The spin ensemble from diamond NV centers induces an inverse…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
