Department of Plant Sciences, University of Cambridge, Downing St., Cambridge CB2 3EA, UK.
Sensors (Basel). 2023 Jan 10;23(2):780. doi: 10.3390/s23020780.
The direct quantification of plant biomarkers in sap is crucial to enhancing crop production. However, current approaches are inaccurate, involving the measurement of non-specific parameters such as colour intensity of leaves, or requiring highly invasive processes for the extraction of sap. In addition, these methods rely on bulky and expensive equipment, and they are time-consuming. The present work reports for the first time a low-cost sensing device that can be used for the simultaneous determination of sap K+ and pH in living plants by means of reverse iontophoresis. A screen-printed electrode was modified by deposition of a K+-selective membrane, achieving a super-Nernstian sensitivity of 70 mV Log[K+]−1 and a limit of detection within the micromolar level. In addition, the cathode material of the reverse iontophoresis device was modified by electrodeposition of RuOx particles. This electrode could be used for the direct extraction of ions from plant leaves and the amperometric determination of pH within the physiological range (pH 3−8), triggered by the selective reaction of RuOx with H+. A portable and low-cost (<£60) microcontroller-based device was additionally designed to enable its use in low-resource settings. The applicability of this system was demonstrated by measuring the changes in concentration of K+ and pH in tomato plants before and after watering with deionised water. These results represent a step forward in the design of affordable and non-invasive devices for the monitoring of key biomarkers in plants, with a plethora of applications in smart farming and precision agriculture among others.
直接定量植物生物标志物在树液中对于提高作物产量至关重要。然而,目前的方法不准确,涉及到测量叶片颜色强度等非特异性参数,或者需要高度侵入性的提取树液的过程。此外,这些方法依赖于庞大而昂贵的设备,并且耗时。本工作首次报道了一种低成本的传感装置,该装置可以通过反向离子电渗的方法同时测定活植物中树液的 K+和 pH 值。通过沉积 K+选择性膜对丝网印刷电极进行了修饰,实现了超 Nernst 灵敏度为 70 mV Log[K+]−1 和微摩尔级别的检测限。此外,通过电化学沉积 RuOx 颗粒对反向离子电渗装置的阴极材料进行了修饰。该电极可以直接从植物叶片中提取离子,并在生理范围内(pH 3-8)通过 RuOx 与 H+的选择性反应进行 pH 值的电流测定。此外,还设计了一种基于微控制器的便携式低成本 (<£60) 设备,以使其能够在资源匮乏的环境中使用。通过用去离子水给番茄植株浇水前后测量 K+和 pH 值的浓度变化,验证了该系统的适用性。这些结果代表了在设计经济实惠且非侵入性的设备以监测植物中的关键生物标志物方面迈出了一步,在智能农业和精准农业等领域具有广泛的应用前景。