Zhi-Wen Chen, Zhen-Yue She, Tianwu Wang, Hao Jiang, Xuequan Chen, Yirong Wu, G. Fang

2026.3.10Photonics Research

DOI: 10.1364/prj.582741

Abstract

Terahertz imaging has become increasingly important across various fields and practical production applications. Achieving both high sensitivity and high speed remains a primary challenge for most current THz imaging technologies. In this work, we present an imaging system based on Rydberg atomic vapor operating at frequencies exceeding 1 THz. By utilizing Cesium 133 atoms coupled with THz waves, de-excitation radiation generated after atomic excitation to Rydberg states converts invisible THz waves into visible light, enabling the acquisition of spatial information and intensity distributions of THz fields. The system achieves a minimum detectable power of 330 fW /s 1/2 per (2.4×2.4) μm 2 , an imaging resolution of approximately 1.7 mm, and an imaging bandwidth of 8.6 MHz. Additionally, the theoretical imaging rate can exceed 1 MHz. The Rydberg-atom-based THz imaging system exhibits a simple structure and is amenable to miniaturization. This THz imaging method holds promise for advancing applications in THz nondestructive testing, biomedical imaging, and concealed object detection.

Citation format

CHEN, Zhi-Wen, et al. High-sensitivity and real-time terahertz imaging beyond 1 thz with rydberg atoms. Photonics Research, 2026.