Pulse-width-induced polarization enhancement of optically-pumped N-V electron spin in diamond
Yumeng Song, Yu Tian, Zhiyi Hu, Feifei Zhou, Tengteng Xing, Dawei Lu,, Bing Chen, Ya Wang, Nanyang Xu, Jiangfeng Du

TL;DR
This paper demonstrates that using extremely short laser pulses significantly enhances the electron-spin polarization of N-V centers in diamond, with a 10% improvement, by analyzing the occupation time in metastable states.
Contribution
It introduces a novel scheme utilizing ultra-short laser pulses for improved electron-spin initialization in N-V centers, supported by simulation and experimental validation.
Findings
Shorter laser pulses increase spin polarization.
Laser pulses as short as 4 ns improve contrast by 10%.
Mechanism explained by occupation time in metastable states.
Abstract
The nitrogen-vacancy (N-V) center in diamond is a widely-used platform for quantum information processing and metrology. The electron-spin state of N-V center could be initialized and readout optically, and manipulated by resonate microwave fields. In this work, we analyze the dependence of electron-spin initialization on widths of laser pulses. We build a numerical model to simulate this process and verify the simulation results in experiment. Both simulations and experiments reveal a fact that shorter laser pulses are helpful to the electron-spin polarization. We therefore propose to use extremely-short laser pulses for electron-spin initialization. In this new scheme, the spin-state contrast could be improved about 10% in experiment by using laser pulses as short as 4 ns in width. Furthermore, we provide a mechanism to explain this effect which is due to the occupation time in the…
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Taxonomy
TopicsDiamond and Carbon-based Materials Research · Advanced Fiber Laser Technologies · High-pressure geophysics and materials
