Kim Min-Yeong, Lee Kyu Hwan
Department of Electrochemistry, Korea Institute of Materials Science (KIMS), Changwon, South Korea.
Advanced Materials Engineering, Korea University of Science and Technology, Changwon, South Korea.
Front Chem. 2022 May 9;10:848320. doi: 10.3389/fchem.2022.848320. eCollection 2022.
Greenhouse gases released by agriculture account for 19% of global greenhouse gas emission. Moreover, the abuse of pesticides and fertilizers is a fundamental cause of soil and water pollution. Finding sustainable countermeasures for these problems requires completely new approaches and the integration of knowledge. Precision agriculture (PA) is a technology that reduces environmental pollution with minimal input (e.g., fertilizer, herbicides, and pesticides) and maximize the production of high-quality crops by monitoring the conditions and environment of farmland and crops. However, the lack of data-a key technology for realizing PA-remains a major obstacle to the large-scale adoption of PA. Herein, we discuss important research issues, such as data managements and analysis for accurate decision-making, and specific data acquisition strategies. Moreover, we systematically review and discuss electrochemical sensors, including sensors that monitor the plant, soil, and environmental conditions that directly affect plant growth.
农业排放的温室气体占全球温室气体排放的19%。此外,农药和化肥的滥用是土壤和水污染的根本原因。找到解决这些问题的可持续对策需要全新的方法和知识整合。精准农业(PA)是一种通过监测农田和作物的状况与环境,以最少的投入(如肥料、除草剂和农药)减少环境污染,并使高质量作物产量最大化的技术。然而,缺乏数据——实现精准农业的关键技术——仍然是精准农业大规模应用的主要障碍。在此,我们讨论重要的研究问题,如用于准确决策的数据管理和分析,以及具体的数据采集策略。此外,我们系统地综述并讨论了电化学传感器,包括监测直接影响植物生长的植物、土壤和环境条件的传感器。