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Determining the Nutrient Content of Hydroponically-Cultivated Microgreens with Immersible Silicon Photonic Sensors: A Preliminary Feasibility Study

Microgreens have gained attention for their exceptional culinary characteristics and high nutritional value. The present study focused on a novel approach for investigating the easy extraction of plant samples and the utilization of immersible silicon photonic sensors to determine, on the spot, the...

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Autores principales: Christofi, Aristi, Margariti, Georgia, Salapatas, Alexandros, Papageorgiou, George, Zervas, Panagiotis, Karampiperis, Pythagoras, Koukourikos, Antonis, Tarantilis, Petros A., Kaparakou, Eleftheria H., Misiakos, Konstantinos, Makarona, Eleni
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10346951/
https://www.ncbi.nlm.nih.gov/pubmed/37447788
http://dx.doi.org/10.3390/s23135937
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author Christofi, Aristi
Margariti, Georgia
Salapatas, Alexandros
Papageorgiou, George
Zervas, Panagiotis
Karampiperis, Pythagoras
Koukourikos, Antonis
Tarantilis, Petros A.
Kaparakou, Eleftheria H.
Misiakos, Konstantinos
Makarona, Eleni
author_facet Christofi, Aristi
Margariti, Georgia
Salapatas, Alexandros
Papageorgiou, George
Zervas, Panagiotis
Karampiperis, Pythagoras
Koukourikos, Antonis
Tarantilis, Petros A.
Kaparakou, Eleftheria H.
Misiakos, Konstantinos
Makarona, Eleni
author_sort Christofi, Aristi
collection PubMed
description Microgreens have gained attention for their exceptional culinary characteristics and high nutritional value. The present study focused on a novel approach for investigating the easy extraction of plant samples and the utilization of immersible silicon photonic sensors to determine, on the spot, the nutrient content of microgreens and their optimum time of harvest. For the first time, it was examined how these novel sensors can capture time-shifting spectra caused by the molecules’ dynamic adhesion onto the sensor surface. The experiment involved four types of microgreens (three types of basil and broccoli) grown in a do-it-yourself hydroponic installation. The sensors successfully distinguished between different plant types, showcasing their discriminative capabilities. To determine the optimum harvest time, this study compared the sensor data with results obtained through standard analytical methods. Specifically, the total phenolic content and antioxidant activity of two basil varieties were juxtaposed with the sensor data, and this study concluded that the ideal harvest time for basil microgreens was 14 days after planting. This finding highlights the potential of the immersible silicon photonic sensors for potentially replacing time-consuming analytical techniques. By concentrating on obtaining plant extracts, capturing time-shifting spectra, and assessing sensor reusability, this research paves the way for future advancements in urban farming.
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spelling pubmed-103469512023-07-15 Determining the Nutrient Content of Hydroponically-Cultivated Microgreens with Immersible Silicon Photonic Sensors: A Preliminary Feasibility Study Christofi, Aristi Margariti, Georgia Salapatas, Alexandros Papageorgiou, George Zervas, Panagiotis Karampiperis, Pythagoras Koukourikos, Antonis Tarantilis, Petros A. Kaparakou, Eleftheria H. Misiakos, Konstantinos Makarona, Eleni Sensors (Basel) Article Microgreens have gained attention for their exceptional culinary characteristics and high nutritional value. The present study focused on a novel approach for investigating the easy extraction of plant samples and the utilization of immersible silicon photonic sensors to determine, on the spot, the nutrient content of microgreens and their optimum time of harvest. For the first time, it was examined how these novel sensors can capture time-shifting spectra caused by the molecules’ dynamic adhesion onto the sensor surface. The experiment involved four types of microgreens (three types of basil and broccoli) grown in a do-it-yourself hydroponic installation. The sensors successfully distinguished between different plant types, showcasing their discriminative capabilities. To determine the optimum harvest time, this study compared the sensor data with results obtained through standard analytical methods. Specifically, the total phenolic content and antioxidant activity of two basil varieties were juxtaposed with the sensor data, and this study concluded that the ideal harvest time for basil microgreens was 14 days after planting. This finding highlights the potential of the immersible silicon photonic sensors for potentially replacing time-consuming analytical techniques. By concentrating on obtaining plant extracts, capturing time-shifting spectra, and assessing sensor reusability, this research paves the way for future advancements in urban farming. MDPI 2023-06-26 /pmc/articles/PMC10346951/ /pubmed/37447788 http://dx.doi.org/10.3390/s23135937 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Christofi, Aristi
Margariti, Georgia
Salapatas, Alexandros
Papageorgiou, George
Zervas, Panagiotis
Karampiperis, Pythagoras
Koukourikos, Antonis
Tarantilis, Petros A.
Kaparakou, Eleftheria H.
Misiakos, Konstantinos
Makarona, Eleni
Determining the Nutrient Content of Hydroponically-Cultivated Microgreens with Immersible Silicon Photonic Sensors: A Preliminary Feasibility Study
title Determining the Nutrient Content of Hydroponically-Cultivated Microgreens with Immersible Silicon Photonic Sensors: A Preliminary Feasibility Study
title_full Determining the Nutrient Content of Hydroponically-Cultivated Microgreens with Immersible Silicon Photonic Sensors: A Preliminary Feasibility Study
title_fullStr Determining the Nutrient Content of Hydroponically-Cultivated Microgreens with Immersible Silicon Photonic Sensors: A Preliminary Feasibility Study
title_full_unstemmed Determining the Nutrient Content of Hydroponically-Cultivated Microgreens with Immersible Silicon Photonic Sensors: A Preliminary Feasibility Study
title_short Determining the Nutrient Content of Hydroponically-Cultivated Microgreens with Immersible Silicon Photonic Sensors: A Preliminary Feasibility Study
title_sort determining the nutrient content of hydroponically-cultivated microgreens with immersible silicon photonic sensors: a preliminary feasibility study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10346951/
https://www.ncbi.nlm.nih.gov/pubmed/37447788
http://dx.doi.org/10.3390/s23135937
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