Enabling Smart Agriculture through Sensor-Integrated Microfluidic Chip to Monitor Nutrient Uptake in Plants

vivek kamat, Vagheeswari Venkadesh, Lamar Burton, Krishnaswamy Jayachandran, Shekhar Bhansali
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Abstract

The soil microenvironment greatly influences a plant’s ability to absorb nutrients and germinate. Sensing these changes in soil medium is critical to understand plant nutrient requirements. Soil being dynamic represents changes in nutrient content, element mobility, texture, water-holding capacity, and microbiota which affects the nutrient levels. These minor changes affect the plant in early growth and development and studying these changes has always been challenging. Microfluidics provides a platform to study nutrient availability and exchange in small volumes of liquid or media resembling plant microenvironments. Here, we have developed a novel microfluidic chip-embedded molecular imprinted sensor for sensing nitrate and phosphate in the media. For data acquisition and recording we have implemented a potentiostat controlled via a microcontroller allowing data storage and transfer via a long-range radio module (LoRA). The microfluidic device’s functionality was validated by germination of the legume crimson red and recoding the nitrate and phosphate levels in media for 7 d. The MIP-based sensor measures nitrate and phosphate, in the range from 1 to 1000 mM. The accuracy of detection for nitrate and phosphate showed 99% and 95% respectively. The chip coupled with MIP based sensor for nutrient analysis serves as a platform technology for studying nitrate and phosphate nutrient exchange and interaction. This chip in the future can be implemented to study plant deficiencies, drought resistance, and plant immunity.
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通过集成传感器的微流控芯片监测植物的营养吸收,实现智能农业
土壤微环境极大地影响植物吸收养分和发芽的能力。感知土壤介质中的这些变化对于了解植物的养分需求至关重要。土壤是动态的,表现为养分含量、元素流动性、质地、持水量和微生物群的变化,这些变化影响着养分水平。这些微小的变化会影响植物的早期生长和发育,研究这些变化一直是一个挑战。微流体学为研究类似植物微环境的小体积液体或介质中的养分有效性和交换提供了一个平台。在这里,我们开发了一种新型的微流控芯片嵌入分子印迹传感器,用于检测介质中的硝酸盐和磷酸盐。对于数据采集和记录,我们实现了一个通过微控制器控制的恒电位器,允许通过远程无线电模块(LoRA)存储和传输数据。微流控装置的功能通过豆科植物赤红发芽和记录培养基中7天的硝酸盐和磷酸盐水平来验证。基于mip的传感器测量硝酸盐和磷酸盐,范围从1到1000 mM。硝酸盐和磷酸盐的检测精度分别为99%和95%。该芯片与基于MIP的养分分析传感器相结合,为研究硝酸盐和磷酸盐的养分交换和相互作用提供了平台技术。该芯片未来可用于研究植物缺陷、抗旱性和植物免疫力。
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