Department of Mechanical Engineering, Massachusetts of Institute of Technology, Cambridge, MA, United States of America.
Technology and Public Policy Program, Massachusetts Institute of Technology, Cambridge, MA, United States of America.
PLoS One. 2018 Sep 25;13(9):e0203862. doi: 10.1371/journal.pone.0203862. eCollection 2018.
Small-holding farmers in the developing world suffer from sub-optimal crop yields because they lack a soil diagnostic system that is affordable, usable, and actionable. This paper details the fabrication and characterization of an integrated point-of-use soil-testing system, comprised of disposable ion-selective electrode strips and a handheld electrochemical reader. Together, the strips and reader transduce soil ion concentrations into to an alphanumeric output that can be communicated via text message to a central service provider offering immediate, customized fertilizer advisory. The solid-state ion-selective electrode (SS-ISE) strips employ a two-electrode design with screen-printable carbon nanotube ink serving as the electrical contacts for the working and reference electrodes. The working electrode comprises a plasticizer-free butyl acrylate ion-selective membrane (ISM), doped with an ion-selective ionophore and lipophilic salt. Meanwhile, the reference electrode includes a screen-printed silver-silver chloride ink and a polyvinyl-butyral membrane, which is doped with sodium chloride for stable reference potentials. As a proof of concept, potassium-selective electrodes are studied, given potassium's essential role in plant growth and reproduction. The ISE-based system is reproducibly manufactured to yield a Nernstian response with a sub-micromolar detection limit (pK+ of 5.18 ± 0.08) and near-Nernstian sensitivity (61 mV/decade) in the presence of a 0.02 M strontium chloride extraction solution. Analysis of soil samples using the printed electrodes and reader yielded a correlation coefficient of 𝑅2 = 0.89 with respect to values measured via inductively coupled plasma atomic emission spectroscopy (ICP-AES). The reliable performance of this system is encouraging toward its deployment for soil nutrient management in resource-limited environments.
发展中国家的小农因缺乏负担得起、易用且可操作的土壤诊断系统而导致作物产量不理想。本文详细介绍了一种集成的现场土壤测试系统的制造和特性,该系统由一次性离子选择性电极条和手持式电化学读取器组成。这些电极条和读取器将土壤离子浓度转换为字母数字输出,可以通过短信发送到中央服务提供商,提供即时的、定制的肥料咨询。固态离子选择性电极 (SS-ISE) 电极条采用两电极设计,使用可丝网印刷的碳纳米管油墨作为工作电极和参比电极的电接触。工作电极由不含增塑剂的丙烯酸钠离子选择性膜 (ISM) 组成,掺杂有离子选择性离子载体和疏水性盐。同时,参比电极包括丝网印刷的银-氯化银油墨和聚醋酸乙烯丁酯膜,其中掺杂有氯化钠以提供稳定的参比电位。作为概念验证,研究了钾选择性电极,因为钾在植物生长和繁殖中起着至关重要的作用。基于 ISE 的系统可重复性地制造,在 0.02 M 氯化锶提取溶液中产生具有亚微米级检测限 (pK+为 5.18 ± 0.08) 和近 Nernst 灵敏度 (61 mV/decade) 的 Nernstian 响应。使用印刷电极和读取器对土壤样品进行分析,得到与电感耦合等离子体原子发射光谱 (ICP-AES) 测量值相关的相关系数 R2 = 0.89。该系统的可靠性能令人鼓舞,有望在资源有限的环境中用于土壤养分管理。