Advances in Optics and Photonics光学与光子学进展

Advances in Optics and Photonics(英文缩写 ADV OPT PHOTONICS),ISSN 1943-8206,中文译名:光学与光子学进展 是一本学术期刊。本页汇总该期刊的最新影响因子、分区信息以及最新收录于 PubMed 的文献,帮助您快速了解期刊全貌。

2026 年数据 · 影响因子
30.100
JCR 分区
Q1
CAS 分区
B1
近一年发文量
1
本站 PubMed 收录统计

发文量统计区间:2025-09-27 至 2026-09-27,按本站收录文献的发表日期统计。

ISSN: 1943-8206 · eISSN: - · 缩写: ADV OPT PHOTONICS ·中文: 光学与光子学进展

期刊介绍

选择期刊介绍栏目

期刊简介

Advances in Optics and Photonics 是光学与光子学领域的高水平综述期刊,聚焦激光、非线性光学、量子光学、纳米光子学、超材料与生物医学光子学等方向。期刊以发表系统性、批判性的长篇综述为主,旨在梳理学科进展并指出未来方向。读者群主要为光学、物理、电子工程及材料科学领域的研究生、博士后与资深研究者,适合希望快速把握某一专题全貌的科研人员。

研究方向

主要覆盖光学与光子学的基础与应用研究,包括激光物理、非线性与量子光学、纳米光子学、超材料、集成光子学、成像与传感、生物医学光子学及光通信等。论文类型以长篇综述和教程性文章为主,强调对已有成果的系统整合与评述,也偶尔发表具有广泛意义的原创研究或展望性论文。

期刊特色

期刊取向偏重专题深度与跨方向整合,文章通常篇幅较长、参考文献丰富,注重概念梳理、方法比较与未来挑战的讨论。写作风格要求逻辑清晰、批判性强,适合在某一光子学方向已有积累、希望系统总结或进入新领域的研究者阅读与参考,也常被用作研究生教学与选题调研的资料。

投稿难度

投稿难度较高,主要面向在光学与光子学领域有深厚积累、能够组织大范围文献并提炼关键问题的作者。准备时应先与编辑沟通选题,确保综述覆盖全面且观点独到,避免简单罗列文献。建议由资深研究者牵头,注重批判性分析与未来展望,并预留充足时间进行多轮修改与同行评议。

历年影响因子趋势

JCR 数据年份影响因子JCR 分区
202124.750Q1
202227.100Q1
202325.200Q1
202423.800Q1
202530.100Q1

Advances in Optics and Photonics 最新收录文献

  1. JCR分区: Q1 CAS分区: B1 影响因子: 30.1

    1. Stimulated Raman photothermal microscopy: theory and implementation.

    作者:
    Yifan Zhu, Xiaowei Ge, Hongli Ni, Ji-Xin Cheng
    日期:
    2026-06-30

    Stimulated Raman scattering (SRS) microscopy has shown enormous potential in revealing molecular structures, dynamics, and couplings in complex systems. For most biomolecules, the detection sensitivity of SRS is fundamentally limited to the milli-molar level due to the shot noise and the small modulation depth. Additionally, the operation of SRS imaging is complicated by cross phase modulation. We recently revisited SRS from the perspective of energy deposition. Via intensity gain in the Stokes beam and loss in the pump beam, the SRS process pumps molecules to their vibrationally excited states. The thereafter relaxation heats up the surroundings and induces refractive index changes. By probing the refractive index changes with a laser beam, stimulated Raman photothermal (SRP) microscopy is developed, where a >500-fold boost of modulation depth is achieved. Moreover, SRP imaging can be operated with a noisy fiber laser for excitation and a long working distance air condenser for signal collection. Two implementations and broad biological applications are reviewed. In summary, SRP microscopy opens a new way to perform chemical imaging with ultrahigh sensitivity and long working distance optics toward clinical translation.

  2. JCR分区: Q1 CAS分区: B1 影响因子: 30.1

    2. {"_":"Unified -space theory of optical coherence tomography.","i":["k"]}

    作者:
    Kevin C Zhou, Ruobing Qian, Al-Hafeez Dhalla, Sina Farsiu, Joseph A Izatt
    日期:
    2021-06-30

    We present a general theory of optical coherence tomography (OCT), which synthesizes the fundamental concepts and implementations of OCT under a common 3D -space framework. At the heart of this analysis is the Fourier diffraction theorem, which relates the coherent interaction between a sample and plane wave to the Ewald sphere in the 3D -space representation of the sample. While only the axial dimension of OCT is typically analyzed in -space, we show that embracing a fully 3D -space formalism allows explanation of nearly every fundamental physical phenomenon or property of OCT, including contrast mechanism, resolution, dispersion, aberration, limited depth of focus, and speckle. The theory also unifies diffraction tomography, confocal microscopy, point-scanning OCT, line-field OCT, full-field OCT, Bessel beam OCT, transillumination OCT, interferometric synthetic aperture microscopy (ISAM), and optical coherence refraction tomography (OCRT), among others. Our unified theory not only enables clear understanding of existing techniques but also suggests new research directions to continue advancing the field of OCT.

  3. JCR分区: Q1 CAS分区: B1 影响因子: 30.1

    3. Spatial light interference microscopy: principle and applications to biomedicine.

    作者:
    Xi Chen, Mikhail E Kandel, Gabriel Popescu
    日期:
    2021-06-30

    In this paper, we review spatial light interference microscopy (SLIM), a common-path, phase-shifting interferometer, built onto a phase-contrast microscope, with white-light illumination. As one of the most sensitive quantitative phase imaging (QPI) methods, SLIM allows for speckle-free phase reconstruction with sub-nanometer path-length stability. We first review image formation in QPI, scattering, and full-field methods. Then, we outline SLIM imaging from theory and instrumentation to diffraction tomography. Zernike's phase-contrast microscopy, phase retrieval in SLIM, and halo removal algorithms are discussed. Next, we discuss the requirements for operation, with a focus on software developed in-house for SLIM that enables high-throughput acquisition, whole slide scanning, mosaic tile registration, and imaging with a color camera. We introduce two methods for solving the inverse problem using SLIM, white-light tomography, and Wolf phase tomography. Lastly, we review the applications of SLIM in basic science and clinical studies. SLIM can study cell dynamics, cell growth and proliferation, cell migration, mass transport, etc. In clinical settings, SLIM can assist with cancer studies, reproductive technology, blood testing, etc. Finally, we review an emerging trend, where SLIM imaging in conjunction with artificial intelligence brings computational specificity and, in turn, offers new solutions to outstanding challenges in cell biology and pathology.

  4. JCR分区: Q1 CAS分区: B1 影响因子: 30.1

    4. A pragmatic guide to multiphoton microscope design.

    作者:
    Michael D Young, Jeffrey J Field, Kraig E Sheetz, Randy A Bartels, Jeff Squier
    日期:
    2015-06-30

    Multiphoton microscopy has emerged as a ubiquitous tool for studying microscopic structure and function across a broad range of disciplines. As such, the intent of this paper is to present a comprehensive resource for the construction and performance evaluation of a multiphoton microscope that will be understandable to the broad range of scientific fields that presently exploit, or wish to begin exploiting, this powerful technology. With this in mind, we have developed a guide to aid in the design of a multiphoton microscope. We discuss source selection, optical management of dispersion, image-relay systems with scan optics, objective-lens selection, single-element light-collection theory, photon-counting detection, image rendering, and finally, an illustrated guide for building an example microscope.

  5. JCR分区: Q1 CAS分区: B1 影响因子: 30.1

    5. Whispering gallery mode sensors.

    作者:
    Matthew R Foreman, Jon D Swaim, Frank Vollmer
    日期:
    2015-06-30

    We present a comprehensive overview of sensor technology exploiting optical whispering gallery mode (WGM) resonances. After a short introduction we begin by detailing the fundamental principles and theory of WGMs in optical microcavities and the transduction mechanisms frequently employed for sensing purposes. Key recent theoretical contributions to the modeling and analysis of WGM systems are highlighted. Subsequently we review the state of the art of WGM sensors by outlining efforts made to date to improve current detection limits. Proposals in this vein are numerous and range, for example, from plasmonic enhancements and active cavities to hybrid optomechanical sensors, which are already working in the shot noise limited regime. In parallel to furthering WGM sensitivity, efforts to improve the time resolution are beginning to emerge. We therefore summarize the techniques being pursued in this vein. Ultimately WGM sensors aim for real-world applications, such as measurements of force and temperature, or alternatively gas and biosensing. Each such application is thus reviewed in turn, and important achievements are discussed. Finally, we adopt a more forward-looking perspective and discuss the outlook of WGM sensors within both a physical and biological context and consider how they may yet push the detection envelope further.

  6. JCR分区: Q1 CAS分区: B1 影响因子: 30.1

    6. Three-dimensional display technologies.

    作者:
    Jason Geng
    日期:
    2013-01-01

    The physical world around us is three-dimensional (3D), yet traditional display devices can show only two-dimensional (2D) flat images that lack depth (i.e., the third dimension) information. This fundamental restriction greatly limits our ability to perceive and to understand the complexity of real-world objects. Nearly 50% of the capability of the human brain is devoted to processing visual information [ (Pearson, 2012)]. Flat images and 2D displays do not harness the brain's power effectively. With rapid advances in the electronics, optics, laser, and photonics fields, true 3D display technologies are making their way into the marketplace. 3D movies, 3D TV, 3D mobile devices, and 3D games have increasingly demanded true 3D display with no eyeglasses (autostereoscopic). Therefore, it would be very beneficial to readers of this journal to have a systematic review of state-of-the-art 3D display technologies.

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