Wang Liru, Wang Qianqian, Yao Chong, Li Minzan, Liu Gang, Zhang Miao
Key Laboratory of Smart Agriculture Systems, Ministry of Education, China Agricultural University, Beijing 100083, China.
Key Laboratory of Agricultural Information Acquisition Technology, Ministry of Agriculture and Rural Affairs, China Agricultural University, Beijing 100083, China.
Anal Chem. 2024 Jul 23;96(29):11923-11931. doi: 10.1021/acs.analchem.4c01684. Epub 2024 Jul 11.
The pH and humidity of the crop environment are essential indicators for monitoring crop growth status. This study reports a lead-free perovskite/polyvinylidene fluoride-hexafluoropropylene composite (LPPC) to enhance the stability and reliability of in situ plant pH and humidity monitoring. The mesh composite membrane of LPPC illustrates a hydrophobic contact angle of 101.982°, a tensile strain of 800%, and an opposing surface potential of less than -184.9 mV, which ensures fast response, high sensitivity, and stability of the sensor during long-term plant monitoring. The LPPC-coated pH electrode possesses a sensitivity of -63.90 mV/pH, which provides a fast response within 5 s and is inert to environmental temperature interference. The LPPC-coated humidity sensor obtains a sensitivity of -145.7 Ω/% RH, responds in 28 s, and works well under varying light conditions. The flexible multimodal sensor coated with an LPPC membrane completed real-time in situ monitoring of soilless strawberries for 17 consecutive days. Satisfactory consistency and accuracy performance are observed. The study provides a simple solution for developing reliable, flexible wearable multiparameter sensors for in situ monitoring of multiple parameters of crop environments.
作物环境的pH值和湿度是监测作物生长状况的重要指标。本研究报道了一种无铅钙钛矿/聚偏氟乙烯-六氟丙烯复合材料(LPPC),以提高原位植物pH值和湿度监测的稳定性和可靠性。LPPC的网状复合膜显示出101.982°的疏水接触角、800%的拉伸应变和小于-184.9 mV的相反表面电位,这确保了传感器在长期植物监测过程中的快速响应、高灵敏度和稳定性。涂有LPPC的pH电极灵敏度为-63.90 mV/pH,在5秒内提供快速响应,并且对环境温度干扰不敏感。涂有LPPC的湿度传感器灵敏度为-145.7 Ω/%RH,响应时间为28秒,在不同光照条件下均能良好工作。涂有LPPC膜的柔性多模态传感器连续17天完成了对无土栽培草莓的实时原位监测。观察到令人满意的一致性和准确性表现。该研究为开发用于原位监测作物环境多个参数的可靠、柔性可穿戴多参数传感器提供了一种简单的解决方案。