1.中国科学院西安光学精密机械研究所, 月球与深空探测技术研究室,西安 710119
2.中国科学院大学, 北京 100049
张文(2001—),男,硕士研究生,主要研究方向为深空探测技术 。Email: 2452860226@qq.com
薛彬(1979—),男,研究员,博士,主要研究方向为深空探测技术。Email: xuebin@opt.ac.cn
收稿:2026-02-04,
修回:2026-03-23,
录用:2026-03-30,
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张文,李浩铭,成凯,等. 多色LED照明式多光谱显微成像系统设计与验证[J].光子学报,2026,55(7):0711002
Zhang Wen, ˒ , Li Haoming, et al. Design and Validation of a Multi-Color LED Illumination-Based Multispectral Microscopic Imaging System[J]. Acta Photonica Sinica, 2026, 55(7):0711002
张文,李浩铭,成凯,等. 多色LED照明式多光谱显微成像系统设计与验证[J].光子学报,2026,55(7):0711002 DOI: 10.3788/gzxb20265507.0711002. CSTR: 32255.14.gzxb20265507.0711002.
Zhang Wen, ˒ , Li Haoming, et al. Design and Validation of a Multi-Color LED Illumination-Based Multispectral Microscopic Imaging System[J]. Acta Photonica Sinica, 2026, 55(7):0711002 DOI: 10.3788/gzxb20265507.0711002. CSTR: 32255.14.gzxb20265507.0711002.
针对深空探测中多光谱显微成像设备对主动照明与小型化的需求,本研究设计并实现了一种环形多色LED主动照明光源,并在此基础上构建了一套多光谱显微成像系统。所设计光源采用与成像光轴同心的双环倾角阵列结构,抑制了样品微观形貌引起的方向性阴影,从结构层面提升了照明稳定性与视场一致性,整体半径仅35 mm。光源集成了14个波段的LED,覆盖400–1600 nm,并基于单颗LED辐照度与器件尺寸约束提出弱波段增配策略,实现多波段照明能力的均衡。在验证方面,对系统进行了光谱分辨率和空间分辨率测试,测试结果表明系统能够满足探测需求;对目标矿物进行了14波段图像的采集,形成数据立方体,在此基础上进行了矿物反射率重建,重建曲线与光谱仪测量结果在谱形趋势上高度一致。结果表明,该环形多色LED照明方案具备结构紧凑、无运动部件、光谱通道数多等优势,可为后续深空行星表面多光谱显微成像载荷的光源设计与系统集成提供参考。
To satisfy the requirements for active illumination, structural compactness, and high reliability of multispectral microscopic imaging instruments for deep-space exploration, this paper designs a ring-shaped multicolor LED active illumination source and develops a multispectral microscopic imaging system based on this source. In planetary surface exploration missions, microscopic imaging systems are expected to provide both fine spatial detail and spectral information for mineral identification and material analysis. However, conventional multispectral microscopic imaging devices often suffer from a relatively large volume, limited spectral channels, and complicated mechanical structures, which make them difficult to apply in deep-space payloads under strict constraints on size, weight, power consumption, and long-term operational stability. To address these problems, this study proposes a compact active illumination scheme with multiple spectral bands and no moving parts, aiming to improve system integration and applicability in future deep-space missions.The proposed illumination source adopts a dual-ring tilted array structure concentric with the imaging optical axis. By arranging the LEDs in two concentric tilted rings, the source provides illumination from multiple directions around the sample, which helps suppress directional shadows caused by microscopic surface topography and improves the uniformity and stability of the illumination field. This structural design is especially suitable for microscopic imaging of uneven sample surfaces, where local protrusions and depressions may significantly affect image quality under conventional directional illumination. At the same time, the overall radius of the designed light source is only 35 mm, which demonstrates a high level of miniaturization and makes the source suitable for compact payload integration.The light source integrates LEDs in 14 spectral bands covering the wavelength range from 400 to 1600 nm, enabling multispectral imaging from the visible region to the near-infrared region. Such spectral coverage provides the capability to capture both morphological and spectral characteristics of target samples and supports subsequent mineral discrimination and reflectance analysis. Considering the practical limitations of single-LED irradiance output and the restricted available space in the compact source structure, an enhancement strategy for relatively weak spectral bands is proposed. By increasing the number of LEDs or optimizing the arrangement for specific bands with insufficient irradiance, the illumination capability across different wavelengths is effectively balanced. This method improves the consistency of image acquisition conditions among multiple channels and enhances the overall usability of the multispectral system.Based on the designed illumination source, a complete multispectral microscopic imaging system is constructed. To verify its performance, spectral resolution and spatial resolution experiments are carried out. The experimental results show that the developed system can satisfy the basic detection requirements of multispectral microscopic imaging. In addition, mineral samples are selected as target objects for imaging experiments. Multispectral images are acquired in all 14 spectral bands and organized into a spectral data cube. On this basis, the reflectance spectra of the target minerals are reconstructed and compared with the corresponding measurements obtained using a spectrometer. The comparison results indicate that the reconstructed spectra are highly consistent with the spectrometer measurements in overall spectral profile and variation trend. This agreement demonstrates that the proposed system can effectively recover the spectral characteristics of the target samples and confirms the feasibility of using the ring-shaped multicolor LED illumination source in multispectral microscopic imaging applications.The results show that the proposed ring-shaped multicolor LED active illumination scheme has several advantages, including compact structure, no moving parts, high integration capability, and a relatively large number of spectral channels. It can effectively improve illumination performance under microscopic imaging conditions and support accurate multispectral image acquisition and spectral reconstruction. Therefore, the proposed design provides an effective technical solution for multispectral microscopic imaging payloads under the strict engineering constraints of deep-space exploration. It can also serve as a useful reference for the design, optimization, and system integration of illumination sources in future planetary surface exploration instruments.
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