A study on the improvements and limitations of image quality in quantum polarization microscopy using an entangled-photon source
Mousume Samad, Maki Shimizu, Yasuto Hijikata · Japanese Journal of Applied Physics · 2025
Abstract Quantum imaging is an advanced method for microscopy or investigating the optical properties of materials or bio-medical inspections with high accuracy, low noise, and extremely low photo-damage. In previous work, we proposed a quantum imaging technique, in which variations in polarization angle due to reflection or transmission at the sample enhance image contrast in the second-order autocorrelation function at zero delay g 2(0). However, the image resolution observed was not satisfactory. In this report, to improve the image quality, the parameters such as coincidence window was optimized to distinguish photon statistics effectively due to change in polarization angle and the objective lens was utilized to focus the entangled photon beams. These modifications enabled optical imaging by accurately detecting slight polarization variations in different media. Although this method is effective for various samples, it has certain limitations for samples that exhibit polarization disturbances, such as those involving photon scattering. Nevertheless, the proposed approach demonstrates superior imaging performance under noisy conditions and low illumination, offering promising possibilities for high-quality quantum imaging applications.