Delord Tom, Monge Richard, Meriles Carlos A
Department of Physics, CUNY-City College of New York, New York, New York 10031, United States.
CUNY-Graduate Center, New York, New York 10016, United States.
Nano Lett. 2024 Jun 5;24(22):6474-6479. doi: 10.1021/acs.nanolett.4c00222. Epub 2024 May 20.
Experimental noise often contains information about the interactions of a system with its environment, but establishing a relation between the measured time fluctuations and the underlying physical observables is rarely apparent. Here, we leverage a multidimensional and multisensor analysis of spectral diffusion to investigate the dynamics of trapped carriers near subdiffraction clusters of nitrogen-vacancy (NV) centers in diamond. We establish statistical correlations in the spectral fluctuations we measure as we recursively probe the cluster optical resonances, which we then exploit to reveal proximal traps. Further, we deterministically induce Stark shifts in the cluster spectrum, ultimately allowing us to pinpoint the relative three-dimensional positions of interacting NVs as well as the location and charge sign of surrounding traps. Our results can be generalized to other color centers and provide opportunities for the characterization of photocarrier dynamics in semiconductors and the manipulation of nanoscale spin-qubit clusters connected via electric fields.
实验噪声通常包含有关系统与其环境相互作用的信息,但在测量的时间波动与潜在的物理可观测量之间建立联系却很少是显而易见的。在这里,我们利用光谱扩散的多维和多传感器分析来研究金刚石中氮空位(NV)中心亚衍射簇附近捕获载流子的动力学。当我们递归探测簇光学共振时,我们在所测量的光谱波动中建立统计相关性,然后利用这些相关性来揭示近端陷阱。此外,我们确定性地在簇光谱中诱导斯塔克位移,最终使我们能够精确确定相互作用的NV的相对三维位置以及周围陷阱的位置和电荷符号。我们的结果可以推广到其他色心,并为表征半导体中的光载流子动力学以及操纵通过电场连接的纳米级自旋量子比特簇提供机会。