基于衍射的超简化计算光谱仪。

IF 19.4 1区 物理与天体物理 Q1 Physics and Astronomy
Chuangchuang Chen, Honggang Gu, Shiyuan Liu
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引用次数: 0

摘要

在当前的光谱学研究中,将光谱仪小型化以用于结构紧凑、成本效益高的移动平台是一项重大挑战,传统的光谱仪由于体积庞大而不实用。现有的小型化设计主要依靠纳米光子结构的预校准响应函数来编码探测器阵列在快照中捕捉到的光谱信息。精确的光谱重构可通过计算技术实现,但这需要精确的元件设计、高精度制造和校准。我们提出了一种超简化计算光谱仪,该光谱仪采用单带到宽带衍射分解策略,通过数值正则化变换实现,而数值正则化变换只取决于衍射辐射的光谱。我们设计的主要特点是使用一个简单、任意形状的针孔作为部分分散器,从而无需复杂的编码设计和全光谱校准。我们的光谱仪在 200 nm 的带宽范围内实现了优于 1 nm 的重建光谱峰定位精度,并对双峰光谱中相距 3 nm 的峰实现了出色的分辨率,所有这一切都在不到半英寸的紧凑尺寸内完成。值得注意的是,我们的方法还在宽带相干衍射成像方面取得了突破性进展,而无需事先了解宽带照明光谱、假定样品为非色散样品或对探测器量子效率进行校正。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ultra-simplified diffraction-based computational spectrometer.

Ultra-simplified diffraction-based computational spectrometer.

Miniaturizing spectrometers for compact and cost-effective mobile platforms is a major challenge in current spectroscopy research, where conventional spectrometers are impractical due to their bulky footprint. Existing miniaturized designs primarily rely on precalibrated response functions of nanophotonic structures to encode spectral information captured in a snapshot by detector arrays. Accurate spectrum reconstruction is achieved through computational techniques, but this requires precise component design, high-precision fabrication, and calibration. We propose an ultra-simplified computational spectrometer that employs a one-to-broadband diffraction decomposition strategy facilitated by a numerical regularized transform that depends only on the spectrum of the diffracted radiation. The key feature of our design is the use of a simple, arbitrarily shaped pinhole as the partial disperser, eliminating the need for complex encoding designs and full spectrum calibration. Our spectrometer achieves a reconstructed spectral peak location accuracy of better than 1 nm over a 200 nm bandwidth and excellent resolution for peaks separated by 3 nm in a bimodal spectrum, all within a compact footprint of under half an inch. Notably, our approach also reveals a breakthrough in broadband coherent diffractive imaging without requiring any prior knowledge of the broadband illumination spectrum, assumptions of non-dispersive specimens, or correction for detector quantum efficiency.

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来源期刊
CiteScore
27.00
自引率
2.60%
发文量
331
审稿时长
20 weeks
期刊介绍: Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.
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