电磁感应透明
里德堡原子
原子物理学
无线电频率
里德伯公式
里德堡州
激发态
电场
激光器
物理
光学
离子
电信
量子力学
计算机科学
电离
作者
Christopher L. Holloway,Josh A. Gordon,Matthew T. Simons,David Anderson,Andrew Schwarzkopf,Stephanie Miller,Nithiwadee Thaicharoen,Georg Raithel
标识
DOI:10.1109/nano.2015.7388728
摘要
In this presentation, we discuss a fundamentally new approach for an electric (E) field probe design. This new approach is significantly different than currently used field probes in that it is based on the interaction of RF-fields with Rydberg atoms (alkali atoms placed in a glass vapor cell are excited optically to Rydberg states). The applied RF-field alters the resonant state of the atoms. The Rydberg atoms act like an RF-to-optical transducer, converting an RF E-field to an optical-frequency response. The RF probe utilizes the concept of Electromagnetically Induced Transparency (EIT). The RF transition in the four-level atomic system causes a split of the EIT transmission spectrum for a probe laser. This splitting is easily measured and is directly proportional to the applied RF field amplitude. The significant dipole response of Rydberg atoms enables this technique to make self-calibrating measurements over a large frequency band including 1-500 GHz. In this paper, we report on our results in the development of this probe. We also discuss two key applications: that is, self-calibrated measurements and sub-wavelength imaging and field mapping.
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