Mechanical Engineering Department, Iowa State University, Ames, IA, 50011, USA.
Institute of Molecular Biology and Genetics of the National Academy of Sciences of Ukraine, 150 Zabolotnogo str., Kyiv, 03143, Ukraine.
Anal Bioanal Chem. 2021 Oct;413(25):6201-6212. doi: 10.1007/s00216-021-03519-w. Epub 2021 Sep 1.
Laser-induced graphene (LIG) has shown to be a scalable manufacturing route to create graphene electrodes that overcome the expense associated with conventional graphene electrode fabrication. Herein, we expand upon initial LIG reports by functionalizing the LIG with metallic nanoparticles for ion sensing, pesticide monitoring, and water splitting. The LIG electrodes were converted into ion-selective sensors by functionalization with poly(vinyl chloride)-based membranes containing K and H ionophores. These ion-selective sensors exhibited a rapid response time (10-15 s), near-Nernstian sensitivity (53.0 mV/dec for the K sensor and - 56.6 mV/pH for the pH sensor), and long storage stability for 40 days, and were capable of ion monitoring in artificial urine. The pesticide biosensors were created by functionalizing the LIG electrodes with the enzyme horseradish peroxidase and displayed a high sensitivity to atrazine (28.9 nA/μM) with negligible inference from other common herbicides (glyphosate, dicamba, and 2,4-dichlorophenoxyacetic acid). Finally, the LIG electrodes also exhibited a small overpotential for hydrogen evolution reaction and oxygen evolution reaction. The oxygen evolution reaction tests yielded overpotentials of 448 mV and 995 mV for 10 mA/cm and 100 mA/cm, respectively. The hydrogen evolution reaction tests yielded 35 mV and 281 mV for the corresponding current densities. Such a versatile LIG platform paves the way for simple, efficient electrochemical sensing and energy harvesting applications.
激光诱导石墨烯(LIG)已被证明是一种可扩展的制造途径,可以制造出克服传统石墨烯电极制造相关成本的石墨烯电极。在此,我们通过用金属纳米粒子对 LIG 进行功能化,将其扩展到最初的 LIG 报告中,用于离子传感、农药监测和水分解。通过用含有 K 和 H 离子载体的基于聚氯乙烯的膜对 LIG 电极进行功能化,将 LIG 电极转化为离子选择性传感器。这些离子选择性传感器表现出快速的响应时间(10-15 s)、近 Nernst 灵敏度(K 传感器为 53.0 mV/dec,pH 传感器为 -56.6 mV/pH)和长达 40 天的长期存储稳定性,并且能够在人工尿液中进行离子监测。通过用辣根过氧化物酶对 LIG 电极进行功能化,制备了农药生物传感器,对莠去津表现出高灵敏度(28.9 nA/μM),对其他常见除草剂(草甘膦、麦草畏和 2,4-二氯苯氧乙酸)几乎没有干扰。最后,LIG 电极对析氢反应和析氧反应也表现出较小的过电位。析氧反应测试的过电位分别为 448 mV 和 995 mV,对应的电流密度分别为 10 mA/cm 和 100 mA/cm。析氢反应测试的过电位分别为 35 mV 和 281 mV,对应的电流密度分别为 35 mA/cm 和 281 mA/cm。这种多功能的 LIG 平台为简单、高效的电化学传感和能量收集应用铺平了道路。