Fiber optic plant wearable sensors for growth and microclimate monitoring

被引:4
作者
Lo Presti, Daniela [1 ]
Di Tocco, Joshua [1 ]
Massaroni, Carlo [1 ]
Cimini, Sara [2 ]
Cinti, Stefano [3 ]
D'Amato, Rosaria [4 ]
Caponero, Michele A. [4 ]
De Gara, Laura [2 ]
Schena, Emiliano [1 ]
机构
[1] Univ Campus Biomed Roma, Dept Engn, Rome, Italy
[2] Univ Campus Biomed Roma, Dept Sci & Technol Humans & Environm, Rome, Italy
[3] Univ Naples Federico II, Dept Pharm, Naples, Italy
[4] ENEA, FSN TECFIS MNF, Fus & Technol Nucl Safety & Secur Dept, Photon Micro & Nanostruct Lab, Frascati, RM, Italy
来源
PROCEEDINGS OF 2022 IEEE INTERNATIONAL WORKSHOP ON METROLOGY FOR INDUSTRY 4.0 & IOT (IEEE METROIND4.0&IOT) | 2022年
关键词
plant wearable sensors; fiber Bragg gratings; fiber optic sensors; soft sensors; plant health; growth monitoring; microclimate monitoring; BRAGG GRATINGS; CROP LOSSES; HUMIDITY; FOOD;
D O I
10.1109/MetroInd4.0IoT54413.2022.9831698
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
Changes in climate and the growth of population are posing a challenge in plant agricultural industries. Recent technological advances offer new tools for meeting the rising demand for food and energy worldwide. The application of wearable sensors for precision agriculture and their interfacing with plants have more recently emerged as an exciting strategy to monitor plant health. However, the use of plant wearables to improve crop productivity is in its infancy. A few wearable sensors have been designed to monitor growth, microclimate in terms of temperature (T), relative humidity (RH), and light intensity, and plant diseases. Most of these systems are based on electrical sensors that experience a change of resistance, capacitance, or impedance in response to mechanical and chemical inputs. However, some limitations, such as low sensitivity, low signal stability, and high hysteresis error, are still limiting their applications. To overcome these issues, fiber Bragg grating (FBG) technology, with its numerous advantages, can play a crucial role in plant health monitoring. FBG sensors are characterized by good metrological properties, miniaturized size, and biocompatibility, making them suitable for plant wearables development. Moreover, thanks to their easy encapsulation into flexible matrices, FBG can interface with different plant organs (e.g., leaves, stems, fruits). This study proposed soft plant wearable sensors based on FBG technology for plant health monitoring. A soft sensor based on FBG was used for measuring the stem elongation of a tobacco plant. In addition, two other sensors placed on the leaf were used for microclimate monitoring. The promising results open the possibility of using the proposed sensors to promptly diagnose plant health status and optimize the plant growth.
引用
收藏
页码:371 / 376
页数:6
相关论文
共 37 条
  • [1] Brown D., 2021, OSP
  • [2] A Wearable System Based on Flexible Sensors for Unobtrusive Respiratory Monitoring in Occupational Settings
    Di Tocco, Joshua
    Presti, Daniela Lo
    Zaltieri, Martina
    D'Alesio, Giacomo
    Filosa, Mariangela
    Massari, Luca
    Aliperta, Andrea
    Di Rienzo, Marco
    Carrozza, Maria Chiara
    Ferrarin, Maurizio
    Massaroni, Carlo
    Oddo, Calogero Maria
    Schena, Emiliano
    [J]. IEEE SENSORS JOURNAL, 2021, 21 (13) : 14369 - 14378
  • [3] Monitoring Respiration and Cardiac Activity Using Fiber Bragg Grating-Based Sensor
    Dziuda, Lukasz
    Skibniewski, Franciszek Wojciech
    Krej, Mariusz
    Lewandowski, Jaroslaw
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2012, 59 (07) : 1934 - 1942
  • [4] ON CERTAIN INTEGRALS OF LIPSCHITZ-HANKEL TYPE INVOLVING PRODUCTS OF BESSEL FUNCTIONS
    EASON, G
    NOBLE, B
    SNEDDON, IN
    [J]. PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY OF LONDON SERIES A-MATHEMATICAL AND PHYSICAL SCIENCES, 1955, 247 (935) : 529 - 551
  • [5] Fiber grating spectra
    Erdogan, T
    [J]. JOURNAL OF LIGHTWAVE TECHNOLOGY, 1997, 15 (08) : 1277 - 1294
  • [6] MR Fully Compatible and Safe FBG Breathing Sensor: A Practical Solution for Respiratory Triggering
    Fajkus, Marcel
    Nedoma, Jan
    Martinek, Radek
    Brablik, Jindrich
    Vanus, Jan
    Novak, Martin
    Zabka, Stanislav
    Vasinek, Vladimir
    Hanzlikova, Pavla
    Vojtisek, Lubomir
    [J]. IEEE ACCESS, 2019, 7 : 123013 - 123025
  • [7] Wearable multi-sensor for plant monitoring, based on fluorescent fibers
    Galatus, Ramona M.
    Papara, Radu
    Buzura, Loredana
    Roman, AnaMaria
    Ursu, Tudor
    [J]. BIOPHOTONICS IN POINT-OF-CARE, 2020, 11361
  • [8] Nanobiotechnology approaches for engineering smart plant sensors
    Giraldo, Juan Pablo
    Wu, Honghong
    Newkirk, Gregory Michael
    Kruss, Sebastian
    [J]. NATURE NANOTECHNOLOGY, 2019, 14 (06) : 541 - 553
  • [9] We Already Grow Enough Food for 10 Billion People ... and Still Can't End Hunger
    Holt-Gimenez, Eric
    Shattuck, Annie
    Altieri, Miguel
    Herren, Hans
    Gliessman, Steve
    [J]. JOURNAL OF SUSTAINABLE AGRICULTURE, 2012, 36 (06): : 595 - 598
  • [10] Emerging Wearable Sensors for Plant Health Monitoring
    Lee, Giwon
    Wei, Qingshan
    Zhu, Yong
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2021, 31 (52)