School of Chemical Engineering, Jeonbuk National University, Jeonbuk, 54896, Republic of Korea; Advanced Materials and Devices Laboratory, Department of Bio-Convergence Science, Advance Science Campus, Jeonbuk National University, 56212, Republic of Korea.
Advanced Materials and Devices Laboratory, Department of Bio-Convergence Science, Advance Science Campus, Jeonbuk National University, 56212, Republic of Korea.
Chemosphere. 2022 Jan;286(Pt 2):131695. doi: 10.1016/j.chemosphere.2021.131695. Epub 2021 Jul 27.
This work narrates the preparation of efficient nanomaterials framework of zinc oxide (ZnO) nanoglobules (NGs) with graphene oxide (GO) and reduced graphene oxide (rGO) for the fabrication of rapid multiple ion field-effect transistor (MI-FET) sensors. Prepared ZnO-NGs@GO and ZnO-NGs@rGO nanocomposites were broadly analyzed by different analytical techniques to study their morphological, structural, compositional, and electrochemical properties. As electrode materials, ZnO-NGs@GO and ZnO-NGs@rGO were used to fabricate MI-FETs sensor for the detection of multiple ions such as Ni (II), Co (II), Cu (II), Cr (III), Fe (II), and Bi (II) ions. ZnO-NGs@GO and ZnO-NGs@rGO modified MI-FETs sensor exhibited excellent responses towards Cr (III) and Cu (II) ions, which presented the remarkable sensitivities of ~49.28 mA μM. cm (Cr (III) ions) and ~185.32 mA μM. cm (Cu (II) ions), respectively. The fabricated MI-FETs sensor displayed good dynamic linear detection of ions with low limit of detection (LOD) values of ~7.05 μM and ~14.9 μM for ZnO-NGs@GO and ZnO-NGs@rGO electrodes, respectively. Efficient charge transfer over electrode considerably enhanced the trace detection of Cr (III) and Cu (II) ions. The fabricated MI-FETs sensor platform exhibited extraordinary reproducibility and excellent stability of sensing performance and thus, confirmed delightful potential to sprout a useful tool for water maintaining system.
这项工作叙述了氧化锌 (ZnO) 纳米球 (NGs) 与氧化石墨烯 (GO) 和还原氧化石墨烯 (rGO) 高效纳米材料框架的制备,用于制造快速多离子场效应晶体管 (MI-FET) 传感器。通过不同的分析技术对制备的 ZnO-NGs@GO 和 ZnO-NGs@rGO 纳米复合材料进行了广泛分析,以研究它们的形态、结构、组成和电化学性质。作为电极材料,将 ZnO-NGs@GO 和 ZnO-NGs@rGO 用于制造 MI-FET 传感器,用于检测多种离子,如 Ni (II)、Co (II)、Cu (II)、Cr (III)、Fe (II) 和 Bi (II) 离子。ZnO-NGs@GO 和 ZnO-NGs@rGO 修饰的 MI-FET 传感器对 Cr (III) 和 Cu (II) 离子表现出优异的响应,其灵敏度分别为 ~49.28 mA μM. cm(Cr (III) 离子)和 ~185.32 mA μM. cm(Cu (II) 离子)。所制备的 MI-FET 传感器对离子具有良好的动态线性检测能力,ZnO-NGs@GO 和 ZnO-NGs@rGO 电极的检测限 (LOD) 值分别低至 ~7.05 μM 和 ~14.9 μM。电极上的高效电荷转移极大地增强了 Cr (III) 和 Cu (II) 离子的痕量检测。所制备的 MI-FET 传感器平台表现出非凡的重现性和出色的传感性能稳定性,因此证实了它有潜力成为水维持系统的有用工具。