Optical Imaging Instrumentation

A special issue of Electronics (ISSN 2079-9292). This special issue belongs to the section "Microelectronics".

Deadline for manuscript submissions: closed (31 January 2021) | Viewed by 2959

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Guest Editor
Department of Biomedical Engineering, College of Engineering, Wayne State University, Detroit, MI 48201, USA
Interests: photoacoustic (PA) imaging; ultrasound imaging/tomography; optical coherence tomography (OCT) imaging; laser and optics; medical signal/image processing; wavefront engineering/beam shaping; brain functional imaging and resting-state functional connectivity; skin cancer diagnostics via optical imaging
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Special Issue Information

Dear Colleagues,

This Special Issue is intended to encourage researchers worldwide to report their new results in research and development that focus on the most recent developments in optical imaging instrumentation. Original research papers are welcome on (but not limited to) all aspects that focus on the most recent instrumentation developments in: (i) optical coherence tomography (OCT); (ii) photoacoustic microscopy (PAT); (iii) photoacoustic tomography (PAT); (iv) diffuse optical tomography (DOT); (v) Raman spectroscopy; (vi) fluorescent microscopy; and (vii) confocal microscopy.

Prof. Dr. Kamran Avanaki
Guest Editor

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Keywords

  • Optical coherence tomography (OCT)
  • Photoacoustic tomography (PAT)
  • Diffuse pptical tomography (DOT)
  • Raman spectroscopy
  • Optical microscopy
  • Fluorescence microscopy
  • Luminescence imaging
  • Contrast agents
  • Confocal

Published Papers (1 paper)

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Research

9 pages, 2194 KiB  
Article
Performance of Dual-Band Short-Wave Infrared InGaAs Focal-Plane Arrays with Interference Narrow-Band Filter
by Honghai Deng, Zhiliang Wang, Haibao Shao, Yi Li, Xue Li and Haimei Gong
Electronics 2019, 8(12), 1537; https://doi.org/10.3390/electronics8121537 - 13 Dec 2019
Cited by 3 | Viewed by 2611
Abstract
In this work, we fabricated dual-band 800 × 2 short-wave infrared (SWIR) indium gallium arsenide (InGaAs) focal-plane arrays (FPAs) using N-InP/i-In0.53Ga0.47As/N-InP double-heterostructure materials, which are often applied in ocean-color remote sensing. Using narrow-band interference-filter integration, our detector-adopted planner structure [...] Read more.
In this work, we fabricated dual-band 800 × 2 short-wave infrared (SWIR) indium gallium arsenide (InGaAs) focal-plane arrays (FPAs) using N-InP/i-In0.53Ga0.47As/N-InP double-heterostructure materials, which are often applied in ocean-color remote sensing. Using narrow-band interference-filter integration, our detector-adopted planner structure produced two detection channels with center wavelengths of 1.24 and 1.64 μm, and a full-width half-maximum (FWHM) of 0.02 μm for both channels. The photoelectric characteristics of the spectral response, modulation transfer function (MTF), and detectability of the detector were further analyzed. Our FPAs showed good MTF uniformity with pixel operability as high as 100% for each 800 × 1 linear array. Peak detectivity reached 4.39 × 1012 and 5.82 × 1012 cm·Hz1/2/W at 278 K, respectively, and response nonuniformity was ideal at 2.48% and 2.61%, respectively. As a final step, dual-band infrared detection imaging was successfully carried out in push-broom mode. Full article
(This article belongs to the Special Issue Optical Imaging Instrumentation)
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