Special Issue on OISE Major Jointly Established by Tianjin University and Nankai University|10 Article(s)
A universal algorithm for defect-free atomic array with arbitrary periodic geometries [Invited]|Editors' Pick
Yaoting Zhou, Shaoxiong Wang, Jiayi Chen, Yifei Hu, Zhongxiao Xu, and Heng Shen
Chinese Optics Letters
  • Publication Date: Nov. 09, 2023
  • Vol. 21, Issue 11, 110010 (2023)
AI-assisted cell identification and optical sorting [Invited]
Ruping Deng, Yuan Song, Jiahao Yang, Changjun Min, Yuquan Zhang, Xiaocong Yuan, and Weiwei Liu
Cell identification and sorting have been hot topics recently. However, most conventional approaches can only predict the category of a single target, and lack the ability to perform multitarget tasks to provide coordinate information of the targets. This limits the development of high-throughput cell screening technologies. Fortunately, artificial intelligence (AI) systems based on deep-learning algorithms provide the possibility to extract hidden features of cells from original image information. Here, we demonstrate an AI-assisted multitarget processing system for cell identification and sorting. With this system, each target cell can be swiftly and accurately identified in a mixture by extracting cell morphological features, whereafter accurate cell sorting is achieved through noninvasive manipulation by optical tweezers. The AI-assisted model shows promise in guiding the precise manipulation and intelligent detection of high-flux cells, thereby realizing semi-automatic cell research.
Chinese Optics Letters
  • Publication Date: Nov. 15, 2023
  • Vol. 21, Issue 11, 110009 (2023)
Low-loss, high-purity, and ultrabroadband all-fiber LP41 mode converter employing a mode-selective photonic lantern [Invited]
Liang Chen, Huiyi Guo, Zekun Shi, Wenzhe Chang, Boyu Chen, Zhi Wang, and Yan-ge Liu
Chinese Optics Letters
  • Publication Date: Nov. 09, 2023
  • Vol. 21, Issue 11, 110008 (2023)
Two-dimensional materials in photonic integrated circuits: recent developments and future perspectives [Invited]
Hua Tan, Lei Du, Fenghe Yang, Wei Chu, and Yiqiang Zhan
The heterogeneous integration of photonic integrated circuits (PICs) with a diverse range of optoelectronic materials has emerged as a transformative approach, propelling photonic chips toward larger scales, superior performance, and advanced integration levels. Notably, two-dimensional (2D) materials, such as graphene, transition metal dichalcogenides (TMDCs), black phosphorus (BP), and hexagonal boron nitride (hBN), exhibit remarkable device performance and integration capabilities, offering promising potential for large-scale implementation in PICs. In this paper, we first present a comprehensive review of recent progress, systematically categorizing the integration of photonic circuits with 2D materials based on their types while also emphasizing their unique advantages. Then, we discuss the integration approaches of 2D materials with PICs. We also summarize the technical challenges in the heterogeneous integration of 2D materials in photonics and envision their immense potential for future applications in PICs.
Chinese Optics Letters
  • Publication Date: Nov. 15, 2023
  • Vol. 21, Issue 11, 110007 (2023)
Inverse design on terahertz multilevel diffractive lens based on 3D printing [Invited]
Chenyu Shi, Yu Wang, Qiongjun Liu, Sai Chen, Weipeng Zhao, Xiaojun Wu, Jierong Cheng, and Shengjiang Chang
Terahertz (THz) lenses have numerous applications in imaging and communication systems. Currently, the common THz lenses are still based on the traditional design of a circular convex lens. In this work, we present a method for the design of a 3D-printed multilevel THz lens, taking advantage of the benefits offered by 3D printing technology, including compact size, lightweight construction, and cost-effectiveness. The approach utilizes an inverse design methodology, employing optimization methods to promise accurate performance. To reduce simulation time, we employ the finite-difference time-domain method in cylindrical coordinates for near-field computation and couple it with the Rayleigh–Sommerfeld diffraction theory to address far-field calculations. This technology holds great potential for various applications in the field of THz imaging, sensing, and communications, offering a novel approach to the design and development of functional devices operating in the THz frequency range.
Chinese Optics Letters
  • Publication Date: Nov. 10, 2023
  • Vol. 21, Issue 11, 110006 (2023)
Core-antiresonance-based terahertz cavities and applications [Invited]
Yongpeng Han, Yangjun Mei, Chang Liu, Li Lao, Yao Yao, Jiahao Xiao, Jiayu Zhao, and Yan Peng
This work presents a brief review of our recent research on an antiresonant mechanism named core antiresonant reflection (CARR), which leads to a broadband terahertz (THz) spectrum output with periodic dips at resonant frequencies after its transmission along a hollow-core tubular structure (e.g., a paper tube). The CARR theory relies only on parameters of the tube core (e.g., the inner diameter) rather than the cladding, thus being distinct from existing principles such as the traditional antiresonant reflection inside optical waveguides (ARROWs). We demonstrate that diverse tubular structures, including cylindrical, polyhedral, spiral, meshy, and notched hollow tubes with either transparent or opaque cladding materials, as well as a thick-walled hole, could indeed become CARR-type resonators. Based on this CARR effect, we also perform various applications, such as pressure sensing with paper-folded THz cavities, force/magnetism-driven chiral polarization modulations, and single-pulse measurements of the angular dispersion of THz beams. In future studies, the proposed CARR method promises to support breakthroughs in multiple fields by means of being extended to more kinds of tubular entities for enhancing their interactions with light waves in an antiresonance manner.
Chinese Optics Letters
  • Publication Date: Nov. 10, 2023
  • Vol. 21, Issue 11, 110005 (2023)
Femtosecond laser filamentation in simulated atmospheric turbulence [Invited]
Jiewei Guo, Lu Sun, Yuezheng Wang, Jiayun Xue, Zhi Zhang, Haiyi Liu, Shishi Tao, Wenqi Qian, Pengfei Qi, Lie Lin, and Weiwei Liu
The effects of turbulence intensity and turbulence region on the distribution of femtosecond laser filaments are experimentally elaborated. Through the ultrasonic signals emitted by the filaments, it is observed that increasing turbulence intensity and an expanding turbulence active region cause an increase in the start position of the filament and a decrease in filament length, which can be well explained by theoretical calculation. It is also observed that the random perturbation of the air refractive index caused by atmospheric turbulence expands the spot size of the filament. Additionally, when the turbulence refractive index structure constant reaches 8.37×10-12 m-2/3, multiple filaments are formed. Furthermore, the standard deviation of the transverse displacement of filament is found to be proportional to the square root of the turbulent structure constant under the experimental turbulence parameters in this paper. These results contribute to the study of femtosecond laser propagation mechanisms in complex atmospheric turbulence conditions.
Chinese Optics Letters
  • Publication Date: Nov. 09, 2023
  • Vol. 21, Issue 11, 110004 (2023)
Terahertz polarization sensing, chirality enhancement, and specific binding based on metasurface sensors for biochemical detection: a review [Invited]|On the Cover
Liang Ma, Weinan Shi, Fei Fan, Ziyang Zhang, Tianrui Zhang, Jiayue Liu, Xianghui Wang, and Shengjiang Chang
Specific and highly-sensitive biochemical detection technology is particularly important in global epidemics and has critical applications in life science, medical diagnosis, and pharmaceutics. As a newly developed technology, the THz metamaterial-based sensing method is a promising technique for extremely sensitive biomolecular detection. However, due to the significant resonant peaks generated by THz metamaterials, the characteristic absorption peaks of the analyte are usually masked, making it difficult to distinguish enantiomers and specifically identify target biomolecules. Recently, new ways to overcome this limitation have become possible thanks to the emergence of chiral metasurfaces and the polarization sensing method. Additionally, functionalized metasurfaces modified by antibodies or other nanomaterials are also expected to achieve specific sensing with high sensitivity. In this review, we summarize the main advances in THz metamaterials-based sensing from a historical perspective as well as application in chiral recognition and specific detection. Specifically, we introduce the basic theory and key technology of THz polarization spectrum and chiral sensing for biochemical detection, and immune sensing based on biomolecular interaction is also discussed. We mainly focus on chiral recognition and specific sensing using THz metasurface sensors to cover the most recent advances in the topic, which is expected to break through the limitations of traditional THz absorption spectroscopy and chiral spectroscopy in the visible-infrared band and develop into an irreplaceable method for the characterization of biochemical substances.
Chinese Optics Letters
  • Publication Date: Nov. 16, 2023
  • Vol. 21, Issue 11, 110003 (2023)
Generation and application of structured beams based on double-phase holograms [Invited]
Erse Jia, Chen Xie, Yue Yang, and Minglie Hu
Chinese Optics Letters
  • Publication Date: Nov. 09, 2023
  • Vol. 21, Issue 11, 110002 (2023)
Editorial of special issue on OISE major jointly established by Tianjin University and Nankai University
[in Chinese]
Chinese Optics Letters
  • Publication Date: Nov. 15, 2023
  • Vol. 21, Issue 11, 110001 (2023)
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