Physical Optics
Probing phase transition of band topology via radiation topology
Chang-Yin Ji, Wenze Lan, Peng Fu, Gang Wang, Changzhi Gu, Yeliang Wang, Jiafang Li, Yugui Yao, and Baoli Liu
Photonics Research
  • May. 17, 2024
  • Vol. 12, Issue 6 (2024)
Integrated Optics
Demonstration of acousto-optical modulation based on a thin-film AlScN photonic platform
Kewei Bian, Zhenyu Li, Yushuai Liu, Sumei Xu, Xingyan Zhao, Yang Qiu, Yuan Dong, Qize Zhong, Tao Wu, Shaonan Zheng, and Ting Hu
Photonics Research
  • May. 17, 2024
  • Vol. 12, Issue 6 (2024)
Optoelectronics
Addressable structured light system using metasurface optics and an individually addressable VCSEL array
Chenyang Wu, Xuanlun Huang, Yipeng Ji, Tingyu Cheng, Jiaxing Wang, Nan Chi, Shaohua Yu, and Connie J. Chang-Hasnain
Photonics Research
  • May. 17, 2024
  • Vol. 12, Issue 6 (2024)
Optical Devices
Interdigitated terahertz metamaterial sensors: design with the dielectric perturbation theory
Lei Cao, Fanqi Meng, Esra Özdemir, Yannik Loth, Merle Richter, Anna Katharina Wigger, Maira Beatriz Pérez Sosa, Alaa Jabbar Jumaah, Shihab Al-Daffaie, Peter Haring Bolívar, and Hartmut G. Roskos
Photonics Research
  • May. 17, 2024
  • Vol. 12, Issue 6 (2024)
Advancing Integrated Photonics: From Device Innovation to System Integration
Reliable intracavity reflection for self-injection locking lasers and microcomb generation
Bitao Shen, Xuguang Zhang, Yimeng Wang, Zihan Tao, Haowen Shu, Huajin Chang, Wencan Li, Yan Zhou, Zhangfeng Ge, Ruixuan Chen, Bowen Bai, Lin Chang, and Xingjun Wang
Photonics Research
  • May. 07, 2024
  • Vol. 12, Issue 5 (2024)
Editors' Picks
Metasurfaces, as ultra-thin two-dimensional structures with subwavelength patterns, can flexibly control optical parameters such as beam phase, amplitude, and polarization, shaping the light wavefront ideally. Through the development of various miniaturized functional components, metasurfaces have been successfully applied in fields such as optical stealth, holographic display, and image recognition. Among them, metasurface holography technology has demonstrated significant potential in optical encryption, 3D display, augmented reality, and virtual reality due to its advantages of high resolution, wide field of view, and miniaturization.
Photonics Research
  • Apr. 28, 2024
  • Vol. 12, Issue 2 (2024)
On the Cover
As a basic property of photons, polarization state (SOP) has been widely used in communication, optical coherence tomography, medical diagnosis, remote detection, material analysis and other fields. The polarization controller is the key element in the polarization applications, which can be realized by rotating wave plate and birefringence effect, but the traditional discrete optical components have some problems such as great volume, slow speed and poor reconfigurability. This cover article presents a novel polarization controller on the silicon substrate, which is ultra-compact, large tolerance and easy to regulate. The basic principle is that the horizontal and vertical polarization components of light waves can be converted into each other by using the mode hybrid effect of ridged silicon optical waveguide. By using MZI structure and phase shifter, the energy ratio and phase difference of two polarization components can be controlled, and the conversion between arbitrary polarization states can be realized. Due to the perfect symmetry of its structure, this work has obtained the highest range of polarization extinction ratio (PER) reported so far, and has wide application prospects in related fields.
Photonics Research
  • Apr. 25, 2024
  • Vol. 12, Issue 2 (2024)
Spotlight on Optics
Polarimetric imaging, as a novel optical imaging technique, is widely used in fields such as biomedicine, object recognition, polarimetric remote sensing, and 3D imaging. In the field of biomedicine, polarimetric imaging has two unique advantages compared to traditional optical imaging: 1) By analyzing the polarization properties of light interacting with biospecimens, microscopic-level information about the composition and structure can be obtained without requiring labeling agents. For example, collagen fibers in connective tissues can alter the polarization state of light passing through them. Measuring this alteration provides information about collagen fiber orientation and density, which are associated with various diseases such as cancer and fibrosis. 2) By selectively filtering out light waves with certain polarization states, it is possible to enhance image contrast and improve the visibility of certain structures or components based on the birefringence maps.
Photonics Research
  • Apr. 11, 2024
  • Vol. 11, Issue 12 (2024)
On the Cover
Ideal optical imaging relies upon the high-quality focusing of excitation light and accurate detection of the emission light from the fluorescent sample. However, both the optics in the microscope and the biological samples being investigated can introduce aberrations, thus causing degradation in resolution, loss of fluorescent photons, and deterioration of signal-to-background-ratio (SBR), etc. Moreover, microscopes with high numerical apertures (NA), especially the super-resolution microscopy, are more sensitive to aberrations, because the high-NA objectives are more susceptible to high-order aberrations. To detect and correct these optical aberrations, a large number of adaptive optics (AO) technologies have been explored in the last two decades. Conventional AO leverages specific devices, such as the Shack-Hartmann wavefront sensor to measure and correct optical aberrations, then utilized wavefront corrective devices such as spatial light modulators (SLMs) to compensate for the measured aberrations by reshaping the wavefronts. However, conventional AO complicates the optics, imaging procedures, and computation, resulting in many limitations in the actual imaging process.
Photonics Research
  • Mar. 29, 2024
  • Vol. 13, Issue 3 (2024)
Top Downloads
Weike Zhao, Yingying Peng, Mingyu Zhu, Ruoran Liu, Xiaolong Hu, Yaocheng Shi, and Daoxin Dai
  • Photonics Research
  • Vol. 12, Issue 2, 183 (2024)
Chang Qiao, Haoyu Chen, Run Wang, Tao Jiang, Yuwang Wang, and Dong Li
  • Photonics Research
  • Vol. 12, Issue 3, 474 (2024)
Mengdi Luo, Jisen Wen, Pengcheng Ma, Qiuyuan Sun, Xianmeng Xia, Gangyao Zhan, Zhenyao Yang, Liang Xu, Dazhao Zhu, Cuifang Kuang, and Xu Liu
  • Photonics Research
  • Vol. 12, Issue 1, 70 (2024)
Hui Zhang, Lingxiao Wan, Sergi Ramos-Calderer, Yuancheng Zhan, Wai-Keong Mok, Hong Cai, Feng Gao, Xianshu Luo, Guo-Qiang Lo, Leong Chuan Kwek, José Ignacio Latorre, and Ai Qun Liu
  • Photonics Research
  • Vol. 11, Issue 10, 1703 (2023)
Liuhao Zhu, Yuping Tai, Hehe Li, Huajie Hu, Xinzhong Li, Yangjian Cai, and Yijie Shen
  • Photonics Research
  • Vol. 11, Issue 9, 1524 (2023)
Julius Kullig, Daniel Grom, Sebastian Klembt, and Jan Wiersig
  • Photonics Research
  • Vol. 11, Issue 10, A54 (2023)