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Impact of CMOS Pixel and Electronic Circuitry in the Performance of a Hartmann-Shack Wavefront Sensor

This work presents a numerical simulation of a Hartmann-Shack wavefront sensor (WFS) that assesses the impact of integrated electronic circuitry on the sensor performance, by evaluating a full detection chain encompassing wavefront sampling, photodetection, electronic circuitry and wavefront reconst...

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Detalles Bibliográficos
Autores principales: Abecassis, Úrsula Vasconcelos, de Lima Monteiro, Davies William, Salles, Luciana Pedrosa, de Moraes Cruz, Carlos Augusto, Agra Belmonte, Pablo Nunes
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6210534/
https://www.ncbi.nlm.nih.gov/pubmed/30274297
http://dx.doi.org/10.3390/s18103282
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author Abecassis, Úrsula Vasconcelos
de Lima Monteiro, Davies William
Salles, Luciana Pedrosa
de Moraes Cruz, Carlos Augusto
Agra Belmonte, Pablo Nunes
author_facet Abecassis, Úrsula Vasconcelos
de Lima Monteiro, Davies William
Salles, Luciana Pedrosa
de Moraes Cruz, Carlos Augusto
Agra Belmonte, Pablo Nunes
author_sort Abecassis, Úrsula Vasconcelos
collection PubMed
description This work presents a numerical simulation of a Hartmann-Shack wavefront sensor (WFS) that assesses the impact of integrated electronic circuitry on the sensor performance, by evaluating a full detection chain encompassing wavefront sampling, photodetection, electronic circuitry and wavefront reconstruction. This platform links dedicated C algorithms for WFS to a SPICE circuit simulator for integrated electronics. The complete codes can be easily replaced in order to represent different detection or reconstruction methods, while the circuit simulator employs reliable models of either off-the-shelf circuit components or custom integrated circuit modules. The most relevant role of this platform is to enable the evaluation of the applicability and constraints of the focal plane of a given wavefront sensor prior to the actual fabrication of the detector chip. In this paper, we will present the simulation results for a Hartmann-Shack wavefront sensor with an orthogonal array of quad-cells (QC) integrated along with active-pixel (active-pixel sensor (APS)) circuitry and analog-to-digital converters (ADC) on a “complementary metal oxide semiconductor” (CMOS) process and deploying a modal wavefront reconstructor. This extended simulation capability for wavefront sensors enables the test and verification of different photosensitive and circuitry topologies for position-sensitive detectors combined with the simulation of sampling microlenses and reconstruction algorithms, with the goal of enhancing the accuracy in the prediction of the wavefront-sensor performance before a detector CMOS chip is actually fabricated.
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spelling pubmed-62105342018-11-02 Impact of CMOS Pixel and Electronic Circuitry in the Performance of a Hartmann-Shack Wavefront Sensor Abecassis, Úrsula Vasconcelos de Lima Monteiro, Davies William Salles, Luciana Pedrosa de Moraes Cruz, Carlos Augusto Agra Belmonte, Pablo Nunes Sensors (Basel) Article This work presents a numerical simulation of a Hartmann-Shack wavefront sensor (WFS) that assesses the impact of integrated electronic circuitry on the sensor performance, by evaluating a full detection chain encompassing wavefront sampling, photodetection, electronic circuitry and wavefront reconstruction. This platform links dedicated C algorithms for WFS to a SPICE circuit simulator for integrated electronics. The complete codes can be easily replaced in order to represent different detection or reconstruction methods, while the circuit simulator employs reliable models of either off-the-shelf circuit components or custom integrated circuit modules. The most relevant role of this platform is to enable the evaluation of the applicability and constraints of the focal plane of a given wavefront sensor prior to the actual fabrication of the detector chip. In this paper, we will present the simulation results for a Hartmann-Shack wavefront sensor with an orthogonal array of quad-cells (QC) integrated along with active-pixel (active-pixel sensor (APS)) circuitry and analog-to-digital converters (ADC) on a “complementary metal oxide semiconductor” (CMOS) process and deploying a modal wavefront reconstructor. This extended simulation capability for wavefront sensors enables the test and verification of different photosensitive and circuitry topologies for position-sensitive detectors combined with the simulation of sampling microlenses and reconstruction algorithms, with the goal of enhancing the accuracy in the prediction of the wavefront-sensor performance before a detector CMOS chip is actually fabricated. MDPI 2018-09-29 /pmc/articles/PMC6210534/ /pubmed/30274297 http://dx.doi.org/10.3390/s18103282 Text en © 2018 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
Abecassis, Úrsula Vasconcelos
de Lima Monteiro, Davies William
Salles, Luciana Pedrosa
de Moraes Cruz, Carlos Augusto
Agra Belmonte, Pablo Nunes
Impact of CMOS Pixel and Electronic Circuitry in the Performance of a Hartmann-Shack Wavefront Sensor
title Impact of CMOS Pixel and Electronic Circuitry in the Performance of a Hartmann-Shack Wavefront Sensor
title_full Impact of CMOS Pixel and Electronic Circuitry in the Performance of a Hartmann-Shack Wavefront Sensor
title_fullStr Impact of CMOS Pixel and Electronic Circuitry in the Performance of a Hartmann-Shack Wavefront Sensor
title_full_unstemmed Impact of CMOS Pixel and Electronic Circuitry in the Performance of a Hartmann-Shack Wavefront Sensor
title_short Impact of CMOS Pixel and Electronic Circuitry in the Performance of a Hartmann-Shack Wavefront Sensor
title_sort impact of cmos pixel and electronic circuitry in the performance of a hartmann-shack wavefront sensor
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6210534/
https://www.ncbi.nlm.nih.gov/pubmed/30274297
http://dx.doi.org/10.3390/s18103282
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