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Automotive 3.0 µm Pixel High Dynamic Range Sensor with LED Flicker Mitigation

We present and discuss parameters of a high dynamic range (HDR) image sensor with LED flicker mitigation (LFM) operating in automotive temperature range. The total SNR (SNR including dark fixed pattern noise), of the sensor is degraded by floating diffusion (FD) dark current (DC) and dark signal non...

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Detalles Bibliográficos
Autores principales: Oh, Minseok, Velichko, Sergey, Johnson, Scott, Guidash, Michael, Chang, Hung-Chih, Tekleab, Daniel, Gravelle, Bob, Nicholes, Steve, Suryadevara, Maheedhar, Collins, Dave, Mauritzson, Rick, Lin, Lin, Amanullah, Shaheen, Innocent, Manuel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7085572/
https://www.ncbi.nlm.nih.gov/pubmed/32143277
http://dx.doi.org/10.3390/s20051390
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author Oh, Minseok
Velichko, Sergey
Johnson, Scott
Guidash, Michael
Chang, Hung-Chih
Tekleab, Daniel
Gravelle, Bob
Nicholes, Steve
Suryadevara, Maheedhar
Collins, Dave
Mauritzson, Rick
Lin, Lin
Amanullah, Shaheen
Innocent, Manuel
author_facet Oh, Minseok
Velichko, Sergey
Johnson, Scott
Guidash, Michael
Chang, Hung-Chih
Tekleab, Daniel
Gravelle, Bob
Nicholes, Steve
Suryadevara, Maheedhar
Collins, Dave
Mauritzson, Rick
Lin, Lin
Amanullah, Shaheen
Innocent, Manuel
author_sort Oh, Minseok
collection PubMed
description We present and discuss parameters of a high dynamic range (HDR) image sensor with LED flicker mitigation (LFM) operating in automotive temperature range. The total SNR (SNR including dark fixed pattern noise), of the sensor is degraded by floating diffusion (FD) dark current (DC) and dark signal non-uniformity (DSNU). We present results of FD DC and DSNU reduction, to provide required SNR versus signal level at temperatures up to 120 °C. Additionally we discuss temperature dependencies of quantum efficiency (QE), sensitivity, color effects, and other pixel parameters for backside illuminated image sensors. Comparing +120 °C junction vs. room temperature, in visual range we measured a few relative percent increase, while in 940 nm band range we measured 1.46x increase in sensitivity. Measured change of sensitivity for visual bands—such as blue, green, and red colors—reflected some impact to captured image color accuracy that created slight image color tint at high temperature. The tint is, however, hard to detect visually and may be removed by auto white balancing and temperature adjusted color correction matrixes.
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spelling pubmed-70855722020-03-23 Automotive 3.0 µm Pixel High Dynamic Range Sensor with LED Flicker Mitigation Oh, Minseok Velichko, Sergey Johnson, Scott Guidash, Michael Chang, Hung-Chih Tekleab, Daniel Gravelle, Bob Nicholes, Steve Suryadevara, Maheedhar Collins, Dave Mauritzson, Rick Lin, Lin Amanullah, Shaheen Innocent, Manuel Sensors (Basel) Article We present and discuss parameters of a high dynamic range (HDR) image sensor with LED flicker mitigation (LFM) operating in automotive temperature range. The total SNR (SNR including dark fixed pattern noise), of the sensor is degraded by floating diffusion (FD) dark current (DC) and dark signal non-uniformity (DSNU). We present results of FD DC and DSNU reduction, to provide required SNR versus signal level at temperatures up to 120 °C. Additionally we discuss temperature dependencies of quantum efficiency (QE), sensitivity, color effects, and other pixel parameters for backside illuminated image sensors. Comparing +120 °C junction vs. room temperature, in visual range we measured a few relative percent increase, while in 940 nm band range we measured 1.46x increase in sensitivity. Measured change of sensitivity for visual bands—such as blue, green, and red colors—reflected some impact to captured image color accuracy that created slight image color tint at high temperature. The tint is, however, hard to detect visually and may be removed by auto white balancing and temperature adjusted color correction matrixes. MDPI 2020-03-04 /pmc/articles/PMC7085572/ /pubmed/32143277 http://dx.doi.org/10.3390/s20051390 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Oh, Minseok
Velichko, Sergey
Johnson, Scott
Guidash, Michael
Chang, Hung-Chih
Tekleab, Daniel
Gravelle, Bob
Nicholes, Steve
Suryadevara, Maheedhar
Collins, Dave
Mauritzson, Rick
Lin, Lin
Amanullah, Shaheen
Innocent, Manuel
Automotive 3.0 µm Pixel High Dynamic Range Sensor with LED Flicker Mitigation
title Automotive 3.0 µm Pixel High Dynamic Range Sensor with LED Flicker Mitigation
title_full Automotive 3.0 µm Pixel High Dynamic Range Sensor with LED Flicker Mitigation
title_fullStr Automotive 3.0 µm Pixel High Dynamic Range Sensor with LED Flicker Mitigation
title_full_unstemmed Automotive 3.0 µm Pixel High Dynamic Range Sensor with LED Flicker Mitigation
title_short Automotive 3.0 µm Pixel High Dynamic Range Sensor with LED Flicker Mitigation
title_sort automotive 3.0 µm pixel high dynamic range sensor with led flicker mitigation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7085572/
https://www.ncbi.nlm.nih.gov/pubmed/32143277
http://dx.doi.org/10.3390/s20051390
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