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用于植物伤流液中葡萄糖现场检测的低成本单板数字微流控芯片系统构建

喻汉闻1,2(), 贺彰瑾2, 刘亚超2, 董大明2()   

  1. 1. 江苏大学农业工程学院,江苏 镇江 212013,中国
    2. 北京市农林科学院国家农业智能装备工程技术研究中心,北京 100097,中国
  • 收稿日期:2026-04-23 出版日期:2026-05-30
  • 基金项目:
    国家自然科学基金(32225035); 中国博士后科学基金(2025M772474)
  • 作者简介:

    喻汉闻,硕士研究生,研究方向为数字微流控技术。E-mail:

    YU Hanwen, E-mail:

  • 通信作者:
    董大明,博士,研究员,研究方向为基于红外与激光光谱学的现场、快速、高灵敏传感与在线监测方法,及有关传感器研制。E-mail:

Construction of a Low-Cost, Single-Board Digital Microfluidic Chip System for On-Site Glucose Detection in Plant Sap

YU Hanwen1,2(), HE Zhangjin2, LIU Yachao2, DONG Daming2()   

  1. 1. College of Agricultural Engineering, Jiangsu University, Zhenjiang 212013, China
    2. Research Center of Intelligent Equipment, Beijing Academy of Agriculture and Forestry Sciences, Beijing 100097, China
  • Received:2026-04-23 Online:2026-05-30
  • Foundation items:National Natural Science Foundation of China(32225035); China Postdoctoral Science Foundation(2025M772474)
  • Corresponding author:
    DONG Daming, E-mail:

摘要:

【目的/意义】 植物伤流液中葡萄糖(Glucose,Glu)含量可反映植物能量代谢与生理状态,开展其快速、准确的现场检测对植物健康评估和精准农业管理具有重要意义。针对传统检测方法前处理繁琐、试剂消耗大、现场适用性不足等问题,开发了一种单板数字微流控(Digital Microfluidics,DMF)芯片,并构建了结合智能手机成像与多色彩空间分析的比色检测平台,用于芦荟伤流液中Glu的定量分析。 【方法】 系统以ESP32-S3为主控核心,采用两片HV507实现128通道高压输出,用于驱动电极阵列,并设计了Type-C供电与通信、稳压、高压升压、数字隔离、电平转换模块及8×16阵列电极板。芯片采用控制板与阵列电极板分体式结构,并结合印刷电路板(Printed Circuit Board,PCB)电极基底、透明胶带介电层和5 cSt二甲基硅油界面层构建了完整DMF系统。 【结果和讨论】 整机调试结果表明,系统可实现液滴基础形变、定向迁移及连续运动,且在7.5~10.0 μL体积范围内运行稳定。进一步将该平台用于Glu比色检测,设置0、0.1、1、5、10和20 mM浓度梯度,通过芯片上液滴合并显色、智能手机图像采集及线性模型分析,最终在0~20 mM浓度范围内,线性模型决定系数达到0.996,实现了样本中Glu的准确定量检测,检测限达到38.55 μM,样本加标回收率为97.15%~105.28%。 【结论】 该DMF系统具备结构简化、模块化程度高和便于现场部署等优点,可为植物伤流液中生理指标的快速检测提供新的技术手段。

关键词: 数字微流控, 单板芯片, 植物伤流液, 葡萄糖, 比色分析

Abstract:

[Objective] Rapid and accurate on-site detection of the glucose (Glu) in plant sap exudates is of practical significance for plant health assessment and precision agricultural management. However, conventional analytical methods often rely on laboratory instruments, complicated sample pretreatment and relatively large reagent consumption, which limits their application in rapid field analysis. In addition, manual operation in traditional colorimetric assays may introduce operational errors, especially when small-volume samples are used or when rapid detection is required. To address these problems, and to simplify the structure of the DMF system, improve its portability and provide a feasible technical approach for rapid plant physiological indicator detection, a single-board digital microfluidics (DMF) chip was developed in this study, and a colorimetric detection platform integrating smartphone imaging and multi-colour-space analysis was constructed for the quantitative determination of Glu in aloe sap exudates. [Methods] The developed system used an ESP32-S3 microcontroller as the main control unit. Two HV507 high-voltage driver chips were employed to realize 128-channel high-voltage output for the actuation of the electrode array. The hardware design included Type-C power supply and communication, low-voltage regulation, high-voltage boosting, digital isolation, level shifting and an 8 × 16 array electrode plate. To improve system modularity and facilitate chip replacement during experiments, the device adopted a separated structure consisting of a control board and an array electrode board. The control board was mainly responsible for power management, signal generation, voltage conversion and electrode driving, while the array electrode board provided the working area for droplet manipulation. A printed circuit board (PCB) electrode substrate was used as the bottom electrode layer, transparent adhesive tape was selected as the dielectric layer, and 5 cSt dimethyl silicone oil was introduced as the interfacial layer to reduce droplet adhesion and improve actuation stability. Based on this structure, a complete DMF operating interface was constructed. For Glu detection, droplets containing sample solution and colorimetric reagent were manipulated on the chip, merged on the electrode array and allowed to develop colour. Images of the reacted droplets were collected using a smartphone under controlled imaging conditions. Colour information was extracted from different colour spaces, and a linear model was established to evaluate the quantitative relationship between image features and Glu concentration. [Results and Discussions] The results showed that the developed single-board DMF platform could realize basic droplet deformation, directional transport and continuous movement on the array electrode plate. Stable droplet operation was achieved within the volume range of 7.5~10 μL, indicating that the designed electrode array, dielectric layer and interfacial oil layer could support reliable droplet actuation under the selected operating conditions. Compared with systems that depend on external high-voltage equipment or complex wiring, the developed platform integrated the main control, high-voltage generation and multi-channel driving functions on a compact control board, which improved the overall integration level and reduced the complexity of system assembly. The platform was further applied to Glu colorimetric detection in plant sap exudate. Glu concentration gradients of 0, 0.1, 1, 5, 10 and 20 mM were prepared for model construction and performance evaluation. Through on-chip droplet merging and colour development, followed by smartphone image acquisition and colour-space-based linear fitting, a good quantitative response was obtained within the concentration range of 0~20 mM. The coefficient of determination of the linear model reached 0.996, demonstrating that the extracted image features had a strong correlation with Glu concentration. In aloe sap exudate samples, the spiked recovery ranged from 97.15% to 105.28%, indicating that the proposed method could achieve accurate quantitative detection in real plant sap samples. These results suggest that the combination of DMF droplet manipulation, smartphone imaging and colour-space analysis can effectively reduce manual operation and reagent consumption while maintaining satisfactory quantitative performance. [Conclusions] The proposed DMF system features a simplified structure, a high degree of modularity, and good potential for on-site deployment, providing a new technical approach for the rapid detection of physiological indicators in plant xylem sap.

Key words: digital microfluidics, single-plate chip, plant sap, glucose, colorimetric analysis

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