Vanadium Oxide‐Doped Laser‐Induced Graphene Multi‐Parameter Sensor to Decouple Soil Nitrogen Loss and Temperature

Author:

Yang Li1ORCID,Yan Jiayi2,Meng Chuizhou2,Dutta Ankan3,Chen Xue4,Xue Ye1,Niu Guangyu5,Wang Ya2,Du Shuaijie4,Zhou Peng6,Zhang Cheng7,Guo Shijie2,Cheng Huanyu3ORCID

Affiliation:

1. State Key Laboratory of Reliability and Intelligence of Electrical Equipment School of Health Sciences and Biomedical Engineering Hebei University of Technology Tianjin 300130 P. R. China

2. State Key Laboratory for Reliability and Intelligence of Electrical Equipment Hebei Key Laboratory of Smart Sensing and Human‐Robot Interaction School of Mechanical Engineering Hebei University of Technology Tianjin 300130 P. R. China

3. Department of Engineering Science and Mechanics The Pennsylvania State University University Park 16802 USA

4. State Key Laboratory of Reliability and Intelligence of Electrical Equipment Key Laboratory of Bioelectromagnetics and Neuroengineering of Hebei Province School of Electrical Engineering Hebei University of Technology Tianjin 300130 P. R. China

5. School of Architecture and Art Hebei University of Technology Tianjin 300130 P. R. China

6. Tianjin Tianzhong Yimai Technology Development Co. Ltd Tianjin 300384 P. R. China

7. Fujian Key Laboratory of Functional Marine Sensing Materials College of Material and Chemical Engineering Minjiang University Fuzhou 350108 P. R. China

Abstract

AbstractMonitoring nitrogen utilization efficiency and soil temperature in agricultural systems for timely intervention is essential for crop health with reduced environmental pollution. Herein, this work presents a high‐performance multi‐parameter sensor based on vanadium oxide (VOX)‐doped laser‐induced graphene (LIG) foam to completely decouple nitrogen oxides (NOX) and temperature. The highly porous 3D VOX‐doped LIG foam composite is readily obtained by laser scribing vanadium sulfide (V5S8)‐doped block copolymer and phenolic resin self‐assembled films. The heterojunction formed at the LIG/VOX interface provides the sensor with enhanced response to NOX and an ultralow limit of detection of 3 ppb (theoretical estimate of 451 ppt) at room temperature. The sensor also exhibits a wide detection range, fast response/recovery, good selectivity, and stability over 16 days. Meanwhile, the sensor can accurately detect temperature over a wide linear range of 10–110 °C. The encapsulation of the sensor with a soft membrane further allows for temperature sensing without being affected by NOX. The unencapsulated sensor operated at elevated temperature removes the influences of relative humidity and temperature variations for accurate NOX measurements. The capability to decouple nitrogen loss and soil temperature paves the way for the development of future multimodal decoupled electronics for precision agriculture and health monitoring.

Funder

China Postdoctoral Science Foundation

Pennsylvania State University

National Natural Science Foundation of China

National Institutes of Health

National Science Foundation

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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