论文标题

使用光学涡流

Ultraprecise Rydberg atomic localization using optical vortices

论文作者

Jia, Ning, Kirova, Teodora, Juzeliunas, Gediminas, Hamedi, Hamid Reza, Qian, Jing

论文摘要

我们提出了高度激发的rydberg原子的稳健定位,并与Doughnut形的光学涡流相互作用。与较早的站立波(SW)基因定位方法相比,涡流束可以在零强度中心中提供超高精确的二维定位,并在受限制的激发区域内至纳米尺度。我们表明,Rydberg-Rydberg相互作用的存在允许违反直觉上的强大限制,以通过合适的失调部分补偿高空间分辨率。此外,将辅助SW调制应用于两光子的失调允许对Rydberg原子的三维限制。在这种情况下,涡流场提供了横向限制,而两光子的SW调制使纵向纵向定位于Rydberg原子。为了开发一种新的次波长本地化技术,我们的结果将一步铺平一个步骤,以将激发量减少到一些纳米水平,这代表了未来实验应用的可行实现。

We propose a robust localization of the highly-excited Rydberg atoms, interacting with doughnut-shaped optical vortices. Compared with the earlier standing-wave (SW)-based localization methods, a vortex beam can provide an ultrahigh-precision two-dimensional localization solely in the zero-intensity center, within a confined excitation region down to the nanometer scale. We show that the presence of the Rydberg-Rydberg interaction permits counter-intuitively much stronger confinement towards a high spatial resolution when it is partially compensated by a suitable detuning. In addition, applying an auxiliary SW modulation to the two-photon detuning allows a three-dimensional confinement of Rydberg atoms. In this case, the vortex field provides a transverse confinement while the SW modulation of the two-photon detuning localizes the Rydberg atoms longitudinally. To develop a new subwavelength localization technique, our results pave one-step closer to reduce excitation volumes to the level of a few nanometers, representing a feasible implementation for the future experimental applications.

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