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

Author:

Christofi Aristi1,Margariti Georgia12,Salapatas Alexandros1,Papageorgiou George1,Zervas Panagiotis3ORCID,Karampiperis Pythagoras3,Koukourikos Antonis3,Tarantilis Petros A.4ORCID,Kaparakou Eleftheria H.4ORCID,Misiakos Konstantinos1,Makarona Eleni1ORCID

Affiliation:

1. Institute of Nanoscience and Nanotechnology, NCSR “Demokritos”, 153 41 Athens, Greece

2. Department of Materials Science, University of Patras, 265 04 Rio, Greece

3. SCiO P.C., 153 10 Agia Paraskevi, Greece

4. Laboratory of Chemistry, Department of Food Science and Human Nutrition, School of Food and Nutritional Sciences, Agricultural University of Athens, 118 55 Athens, Greece

Abstract

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.

Funder

GOhydro project (gohydro.org), part of the ERA-NET Co-fund ICT-AGRI-FOOD

European Union’s Horizon 2020 research and innovation program

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

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