Electroactive biodegradable microneedles for minimally invasive real-time, in-situ plant physiological monitoring and industrial NH3 sensing

Real-time, in situ monitoring of plant physiological parameters and industrial toxic gas emissions is vital for advancing precision agriculture and ensuring environmental safety. Herein, we developed an electroactive biodegradable microneedle (PPG-MN) sensor enabling minimally invasive monitoring of interstitial glucose, ambient temperature, humidity, and environmental ammonia (NH 3 ) gas leakage. The sensor matrix was fabricated using a polyvinyl alcohol (PVA) network interpenetrated with conductive polyaniline (PANI) and doped with phytic acid (PA), while glucose oxidase (GOx) was immobilized for specificity. The resulting microneedle array exhibited sufficient mechanical strength to penetrate the plant epidermis, establishing a stable electrode–tissue interface via hydrogel swelling. The sensor demonstrated excellent environmental friendliness, featuring a pathogen inhibition rate exceeding 97% and complete soil biodegradation within 35 days. By integrating enzymatic sensing with a temperature and humidity compensation mechanism (effective across 25–50 °C and 25%–50% relative humidity (RH)), the PPG-MN achieved a rapid response time (< 30 s) and a wide linear detection range (1–100 mM). Furthermore, continuous in situ monitoring of Epipremnum aureum leaves over 14 h successfully tracked dynamic glucose fluctuations driven by photosynthesis and respiration. Additionally, leveraging the reversible doping/de-doping mechanism of the PA-doped PANI network, the hydrogel base acts as a highly sensitive chemiresistive gas sensor. The PPG-MN exhibited a strong linear response (R ² = 0.986) to NH 3 across a broad concentration range of 10 to 500 ppm, effectively encompassing the typical toxic emission levels encountered during leather deliming processes. These results indicate that the PPG-MN sensor is a promising, eco-friendly tool for both agricultural Internet of Things (IoT) systems and hazardous gas pre-warning in industries like leather processing.

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Publication Details

Journal
Collagen and Leather
Published
2026-09-01
DOI
https://doi.org/10.1186/s42825-026-00254-9
Primary Topic
Electrochemical sensors and biosensors
Type
article
Field-Weighted Citation Impact
0.00

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article

Electroactive biodegradable microneedles for minimally invasive real-time, in-situ plant physiological monitoring and industrial NH3 sensing

Huie Jiang, Xinhua Liu, Lin Yang, Lanxue Zou et al.
Collagen and Leather
Electrochemical sensors and biosensors
article

Electroactive biodegradable microneedles for minimally invasive real-time, in-situ plant physiological monitoring and industrial NH3 sensing

Huie Jiang, Xinhua Liu, Lin Yang, Lanxue Zou, Lijuan Chen, Tianqi Zhao, Peng Guo
article en

Abstract

Real-time, in situ monitoring of plant physiological parameters and industrial toxic gas emissions is vital for advancing precision agriculture and ensuring environmental safety. Herein, we developed an electroactive biodegradable microneedle (PPG-MN) sensor enabling minimally invasive monitoring of interstitial glucose, ambient temperature, humidity, and environmental ammonia (NH 3 ) gas leakage. The sensor matrix was fabricated using a polyvinyl alcohol (PVA) network interpenetrated with conductive polyaniline (PANI) and doped with phytic acid (PA), while glucose oxidase (GOx) was immobilized for specificity. The resulting microneedle array exhibited sufficient mechanical strength to penetrate the plant epidermis, establishing a stable electrode–tissue interface via hydrogel swelling. The sensor demonstrated excellent environmental friendliness, featuring a pathogen inhibition rate exceeding 97% and complete soil biodegradation within 35 days. By integrating enzymatic sensing with a temperature and humidity compensation mechanism (effective across 25–50 °C and 25%–50% relative humidity (RH)), the PPG-MN achieved a rapid response time (< 30 s) and a wide linear detection range (1–100 mM). Furthermore, continuous in situ monitoring of Epipremnum aureum leaves over 14 h successfully tracked dynamic glucose fluctuations driven by photosynthesis and respiration. Additionally, leveraging the reversible doping/de-doping mechanism of the PA-doped PANI network, the hydrogel base acts as a highly sensitive chemiresistive gas sensor. The PPG-MN exhibited a strong linear response (R ² = 0.986) to NH 3 across a broad concentration range of 10 to 500 ppm, effectively encompassing the typical toxic emission levels encountered during leather deliming processes. These results indicate that the PPG-MN sensor is a promising, eco-friendly tool for both agricultural Internet of Things (IoT) systems and hazardous gas pre-warning in industries like leather processing.

Collagen and LeatherVol. 8(1)
Shaanxi University of Science and Technology (CN)
Key Research and Development Projects of Shaanxi Province
Openalex Percentile: Top 20%
Electrochemical sensors and biosensors
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