A single sensor based multispectral imaging camera using a narrow spectral band color mosaic integrated on the monochrome CMOS image sensor

被引:44
作者
He, Xin [1 ]
Liu, Yajing [1 ]
Ganesan, Kumar [2 ]
Ahnood, Arman [3 ]
Beckett, Paul [3 ]
Eftekhari, Fatima [4 ]
Smith, Dan [4 ]
Uddin, Md Hemayet [4 ]
Skafidas, Efstratios [1 ]
Nirmalathas, Ampalavanapillai [1 ]
Unnithan, Ranjith Rajasekharan [1 ]
机构
[1] Univ Melbourne, Dept Elect & Elect Engn, Melbourne, Vic 3010, Australia
[2] Univ Melbourne, Sch Phys, Melbourne, Vic 3010, Australia
[3] RMIT Univ, Sch Engn, Melbourne, Vic 3000, Australia
[4] Australian Natl Fabricat Facil, Melbourne Ctr Nanofabricat, Clayton, Vic 3168, Australia
关键词
CARBON NANOTUBES; FILTERS; TRANSMISSION; TRANSPARENT;
D O I
10.1063/1.5140215
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
A multispectral image camera captures image data within specific wavelength ranges in narrow wavelength bands across the electromagnetic spectrum. Images from a multispectral camera can extract a additional information that the human eye or a normal camera fails to capture and thus may have important applications in precision agriculture, forestry, medicine, and object identification. Conventional multispectral cameras are made up of multiple image sensors each fitted with a narrow passband wavelength filter and optics, which makes them heavy, bulky, power hungry, and very expensive. The multiple optics also create an image co-registration problem. Here, we demonstrate a single sensor based three band multispectral camera using a narrow spectral band red-green-blue color mosaic in a Bayer pattern integrated on a monochrome CMOS sensor. The narrow band color mosaic is made of a hybrid combination of plasmonic color filters and a heterostructured dielectric multilayer. The demonstrated camera technology has reduced cost, weight, size, and power by almost n times (where n is the number of bands) compared to a conventional multispectral camera.
引用
收藏
页数:10
相关论文
共 51 条
[1]   Multispectral optoacoustic imaging of dynamic redox correlation and pathophysiological progression utilizing upconversion nanoprobes [J].
Ai, Xiangzhao ;
Wang, Zhimin ;
Cheong, Haolun ;
Wang, Yong ;
Zhang, Ruochong ;
Lin, Jun ;
Zheng, Yuanjin ;
Gao, Mingyuan ;
Xing, Bengang .
NATURE COMMUNICATIONS, 2019, 10 (1)
[2]   Axially-Anisotropic Hierarchical Grating 2D Guided-Mode Resonance Strain-Sensor [J].
Babu, Sachin ;
Lee, Jeong-Bong .
SENSORS, 2019, 19 (23)
[3]   Wearable sweat sensors [J].
Bariya, Mallika ;
Nyein, Hnin Yin Yin ;
Javey, Ali .
NATURE ELECTRONICS, 2018, 1 (03) :160-171
[4]   Theory of diffraction by small holes [J].
Bethe, HA .
PHYSICAL REVIEW, 1944, 66 (7/8) :163-182
[5]   Color Imaging via Nearest Neighbor Hole Coupling in Plasmonic Color Filters Integrated onto a Complementary Metal-Oxide Semiconductor Image Sensor [J].
Burgos, Stanley P. ;
Yokogawa, Sozo ;
Atwater, Harry A. .
ACS NANO, 2013, 7 (11) :10038-10047
[6]   Enhanced reflection from arrays of silicon based inverted nanocones [J].
Butt, Haider ;
Dai, Qing ;
Rajasekharan, Ranjith ;
Wilkinson, Timothy D. ;
Amaratunga, Gehan A. J. .
APPLIED PHYSICS LETTERS, 2011, 99 (13)
[7]   Co-impulse multispectral photoacoustic microscopy and optical coherence tomography system using a single supercontinuum laser [J].
Chang, Ying ;
Hu, Yicheng ;
Chen, Zhongjiang ;
Xing, Da .
OPTICS LETTERS, 2019, 44 (18) :4459-4462
[8]   CMOS Photodetectors Integrated With Plasmonic Color Filters [J].
Chen, Qin ;
Chitnis, Danial ;
Walls, Kirsty ;
Drysdale, Tim D. ;
Collins, Steve ;
Cumming, David R. S. .
IEEE PHOTONICS TECHNOLOGY LETTERS, 2012, 24 (03) :197-199
[9]   Dynamic plasmonic colour display [J].
Duan, Xiaoyang ;
Kamin, Simon ;
Liu, Na .
NATURE COMMUNICATIONS, 2017, 8
[10]   Multispectral Imaging with Tunable Plasmonic Filters [J].
Duempelmann, Luc ;
Gallinet, Benjamin ;
Novotny, Lukas .
ACS PHOTONICS, 2017, 4 (02) :236-241