Miniaturized, Field-Deployable, Continuous Soil Water Potential Sensor

被引:7
作者
Chen, Yuncong [1 ]
Tian, Yang [1 ]
Wang, Xinran [1 ]
Wei, Le [1 ]
Dong, Liang [1 ]
机构
[1] Iowa State Univ, Dept Elect & Comp Engn, Ames, IA 50011 USA
基金
美国国家科学基金会; 美国农业部;
关键词
Soil; Reservoirs; Sensors; Ceramics; Stress; Silicon; Agricultural sensor; in-situ measurement; photodetector; soil water potential; POLYMER TENSIOMETERS; MATRIC PRESSURES; SUCTION; SURFACES;
D O I
10.1109/JSEN.2020.3007367
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Soil water potential is a significant factor in determining the dynamics of water in the soil. However, few soil water potential sensors are available to conduct long-term, continuous measurements with full automation, due to cavitation formation inside the sensors while interacting with the soil. This paper presents a miniature, field-deployable soil water potential sensor capable of real-time measurement with a wide dynamic range from 0 to -800 kPa, a minimum detectable change of water potential of similar to 40 Pa, and a high sensitivity of similar to 0.248 mu A/kPa. The sensor consists of a shallow water reservoir sandwiched between a nanoporous ceramic plate and a thin silicon diaphragm with thermal oxide. The nanoscale pores of the ceramic plate allow for the increase of air entry tension, while the smooth and hydrophilic interior surfaces of the water reservoir help to minimize the trapping of air bubbles in the reservoir. When the sensor is embedded in unsaturated soils, the pre-filled water in the reservoir tends to leave the reservoir through the nanopores of the ceramic plate, until an equilibrium in water potential is achieved between the reservoir and the soil. The loss of water leads to bending of the silicon-based diaphragm toward the reservoir. The displacement of the diaphragm is quantified by a miniature optical displacement detector assembled with the sensor, which corresponds to the soil water potential. The presented soil sensor has been validated through both greenhouse and field experiments to monitor dynamic changes in soil water potential in real-time over multiple days.
引用
收藏
页码:14109 / 14117
页数:9
相关论文
共 43 条
  • [1] Continuous Monitoring of Soil Nitrate Using a Miniature Sensor with Poly(3-octyl-thiophene) and Molybdenum Disulfide Nanocomposite
    Ali, Md. Azahar
    Wang, Xinran
    Chen, Yuncong
    Jiao, Yueyi
    Mahal, Navreet K.
    Moru, Satyanarayana
    Castellano, Michael J.
    Schnable, James C.
    Schnable, Patrick S.
    Dong, Liang
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (32) : 29195 - 29206
  • [2] Tunable bioelectrodes with wrinkled-ridged graphene oxide surfaces for electrochemical nitrate sensors
    Ali, Md. Azahar
    Hong, Wei
    Oren, Seval
    Wang, Qiugu
    Wang, Yifei
    Jiang, Huawei
    Dong, Liang
    [J]. RSC ADVANCES, 2016, 6 (71): : 67184 - 67195
  • [3] Influence of humidity conditions on the capacitive and resistive response of an Al/VOPc/Pt co-planar humidity sensor
    Aziz, Fakhra
    Sayyad, M. Hassan
    Sulaiman, K.
    Majlis, B. H.
    Karimov, Khassan S.
    Ahmad, Zubair
    Sugandi, G.
    [J]. MEASUREMENT SCIENCE AND TECHNOLOGY, 2012, 23 (01)
  • [4] Cavitation in high-capacity tensiometers: effect of water reservoir surface roughness
    Bagheri, Meghdad
    Rezania, Mohammad
    Nezhad, Mohaddeseh Mousavi
    [J]. GEOTECHNICAL RESEARCH, 2018, 5 (02) : 81 - 95
  • [5] New polymer tensiometers: Measuring matric pressures down to the wilting point
    Bakker, Gerben
    van der Ploeg, Martine J.
    de Rooij, Gerrit H.
    Hoogendam, Cornelis W.
    Gooren, Hermanus P. A.
    Huiskes, Cindy
    Koopal, Luuk K.
    Kruidhof, Henk
    [J]. VADOSE ZONE JOURNAL, 2007, 6 (01) : 196 - 202
  • [6] The effect of irrigation with anaerobic baffled reactor effluent on nutrient availability, soil properties and maize growth
    Bame, I. B.
    Hughes, J. C.
    Titshall, L. W.
    Buckley, C. A.
    [J]. AGRICULTURAL WATER MANAGEMENT, 2014, 134 : 50 - 59
  • [7] Bie YQ, 2017, NAT NANOTECHNOL, V12, P1124, DOI [10.1038/nnano.2017.209, 10.1038/NNANO.2017.209]
  • [8] Cardoso R, 2007, SPRINGER PROC PHYS, V112, P79
  • [9] Chen YC, 2019, 2019 20TH INTERNATIONAL CONFERENCE ON SOLID-STATE SENSORS, ACTUATORS AND MICROSYSTEMS & EUROSENSORS XXXIII (TRANSDUCERS & EUROSENSORS XXXIII), P2025, DOI [10.1109/transducers.2019.8808562, 10.1109/TRANSDUCERS.2019.8808562]
  • [10] Chong D. Y., 2002, 9 INT C THERM THERM, V2