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1.东京大学 化学系,日本 东京 113-0033
2.东北大学 神经外科工程与转化神经科学系,日本 宫城 980-8575
3.武汉大学 科技研究院,武汉 430072
4.加州大学洛杉矶分校 生物工程系,美国 加利福尼亚州 90095
5.东北大学 国际同步辐射创新中心,日本 宫城 980-8577
菅野寛志(1992-),男,日本大阪人。助理教授,博士,主要研究方向为生物光子学。
合田圭介,教授。E-mail:keisukegoda@g.ecc.u-tokyo.ac.jp
收稿:2025-03-26,
修回:2025-05-22,
纸质出版:2025-12-10
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菅野寛志,周雨奇,合田圭介. 光学频分复用:生物医学成像的新前沿[J]. 光通信研究,2025(6): 250117.
Kanno H, Zhou Y Q, Goda K. Frequency-Division Multiplexing: A New Frontier in Biomedical Imaging[J]. Study on Optical Communications, 2025(6): 250117.
菅野寛志,周雨奇,合田圭介. 光学频分复用:生物医学成像的新前沿[J]. 光通信研究,2025(6): 250117. DOI: 10.13756/j.gtxyj.2025.250117.
Kanno H, Zhou Y Q, Goda K. Frequency-Division Multiplexing: A New Frontier in Biomedical Imaging[J]. Study on Optical Communications, 2025(6): 250117. DOI: 10.13756/j.gtxyj.2025.250117.
文章介绍了光学频分复用(FDM)成像的原理及其在生物医学中的应用。此外,文章还探讨了该技术面临的挑战及其应对策略。FDM成像利用声光偏转器生成强度调制的光束阵列,用于样品照明与激发,同时通过单像素光电探测器进行光信号检测。该技术能够实现高速体积成像和高通量成像流式细胞术。凭借其独特的能力,FDM成像在神经科学、血液学和细胞生物学等领域展现出了广阔的应用前景。
This review introduces the principles of optical Frequency Division Multiplexed (FDM) imaging and its biomedical applications. Additionally
the article explores the challenges faced by this technology and the corresponding approaches to address them. FDM imaging utilizes acousto-optic deflectors to generate an intensity-modulated beam array for sample illumination and excitation
while detecting light signals with a single-pixel photodetector. This technique enables high-speed volumetric imaging and high-throughput imaging flow cytometry. With its unique capabilities
FDM imaging holds great potential for broader applications in fields
such as neurology
hematology
and cell biology.
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