Multi-Wavelength Based Optical Density Sensor for Autonomous Monitoring of Microalgae

A multi-wavelength based optical density sensor unit was designed, developed, and evaluated to monitor microalgae growth in real time. The system consisted of five main components including: (1) laser diode modules as light sources; (2) photodiodes as detectors; (3) driver circuit; (4) flow cell; an...

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Main Authors: Fei Jia, Murat Kacira, Kimberly L. Ogden
Format: Article
Language:English
Published: MDPI AG 2015-09-01
Series:Sensors
Subjects:
Online Access:http://www.mdpi.com/1424-8220/15/9/22234
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spelling doaj-bd94057d5418411697c2b01efefc85702020-11-24T21:05:36ZengMDPI AGSensors1424-82202015-09-01159222342224810.3390/s150922234s150922234Multi-Wavelength Based Optical Density Sensor for Autonomous Monitoring of MicroalgaeFei Jia0Murat Kacira1Kimberly L. Ogden2Department of Agricultural and Biosystems Engineering, The University of Arizona, 1177 E. 4th Street, Shantz Building, Room 403, Tucson, AZ 85721, USADepartment of Agricultural and Biosystems Engineering, The University of Arizona, 1177 E. 4th Street, Shantz Building, Room 403, Tucson, AZ 85721, USADepartment of Chemical and Environmental Engineering, The University of Arizona, 1133 E James E. Rogers Way, Room 108, Tucson, AZ 85721, USAA multi-wavelength based optical density sensor unit was designed, developed, and evaluated to monitor microalgae growth in real time. The system consisted of five main components including: (1) laser diode modules as light sources; (2) photodiodes as detectors; (3) driver circuit; (4) flow cell; and (5) sensor housing temperature controller. The sensor unit was designed to be integrated into any microalgae culture system for both real time and non-real time optical density measurements and algae growth monitoring applications. It was shown that the sensor unit was capable of monitoring the dynamics and physiological changes of the microalgae culture in real-time. Algae biomass concentration was accurately estimated with optical density measurements at 650, 685 and 780 nm wavelengths used by the sensor unit. The sensor unit was able to monitor cell concentration as high as 1.05 g·L−1 (1.51 × 108 cells·mL−1) during the culture growth without any sample preparation for the measurements. Since high cell concentrations do not need to be diluted using the sensor unit, the system has the potential to be used in industrial microalgae cultivation systems for real time monitoring and control applications that can lead to improved resource use efficiency.http://www.mdpi.com/1424-8220/15/9/22234optical densitymulti-wavelengthmicroalgaereal-time monitoring and control
collection DOAJ
language English
format Article
sources DOAJ
author Fei Jia
Murat Kacira
Kimberly L. Ogden
spellingShingle Fei Jia
Murat Kacira
Kimberly L. Ogden
Multi-Wavelength Based Optical Density Sensor for Autonomous Monitoring of Microalgae
Sensors
optical density
multi-wavelength
microalgae
real-time monitoring and control
author_facet Fei Jia
Murat Kacira
Kimberly L. Ogden
author_sort Fei Jia
title Multi-Wavelength Based Optical Density Sensor for Autonomous Monitoring of Microalgae
title_short Multi-Wavelength Based Optical Density Sensor for Autonomous Monitoring of Microalgae
title_full Multi-Wavelength Based Optical Density Sensor for Autonomous Monitoring of Microalgae
title_fullStr Multi-Wavelength Based Optical Density Sensor for Autonomous Monitoring of Microalgae
title_full_unstemmed Multi-Wavelength Based Optical Density Sensor for Autonomous Monitoring of Microalgae
title_sort multi-wavelength based optical density sensor for autonomous monitoring of microalgae
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2015-09-01
description A multi-wavelength based optical density sensor unit was designed, developed, and evaluated to monitor microalgae growth in real time. The system consisted of five main components including: (1) laser diode modules as light sources; (2) photodiodes as detectors; (3) driver circuit; (4) flow cell; and (5) sensor housing temperature controller. The sensor unit was designed to be integrated into any microalgae culture system for both real time and non-real time optical density measurements and algae growth monitoring applications. It was shown that the sensor unit was capable of monitoring the dynamics and physiological changes of the microalgae culture in real-time. Algae biomass concentration was accurately estimated with optical density measurements at 650, 685 and 780 nm wavelengths used by the sensor unit. The sensor unit was able to monitor cell concentration as high as 1.05 g·L−1 (1.51 × 108 cells·mL−1) during the culture growth without any sample preparation for the measurements. Since high cell concentrations do not need to be diluted using the sensor unit, the system has the potential to be used in industrial microalgae cultivation systems for real time monitoring and control applications that can lead to improved resource use efficiency.
topic optical density
multi-wavelength
microalgae
real-time monitoring and control
url http://www.mdpi.com/1424-8220/15/9/22234
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AT muratkacira multiwavelengthbasedopticaldensitysensorforautonomousmonitoringofmicroalgae
AT kimberlylogden multiwavelengthbasedopticaldensitysensorforautonomousmonitoringofmicroalgae
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