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Ionic liquid/poly-L-cysteine composite deposited on flexible and hierarchical porous laser-engraved graphene electrode for high-performance electrochemical analysis of lead ion

机译:沉积在柔性和等级多孔激光雕刻的石墨烯电极上的离子液体/聚-1-半胱氨酸复合材料,用于铅离子的高性能电化学分析

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This work reports the manufacture of miniaturized, flexible electrochemical sensors by using a direct laser engraving process that transforms commercial polyimide (PI) films into a laser-engraved graphene electrode (LEGE). The activation procedure was verified to be necessary in substantially enhancing electrochemical performance. The micro-patterned LEGE with porous 3D morphology can form poly-(L-cysteine) (PLC)-modified LEGE (PLC/LEGE) by the in situ electrochemical polymerization of L-cysteine. The PLC/LEGEs were further decorated with ionic liquid (IL). The combination of the enlarged specific surface area of LEGE and the specific complexing ability of PLC, as well as the good conductivity of IL, endowed the newly designed IL/PLC/LESE with abundant active sites, a large active surface area, and fast electron-transfer ability. Thus, the IL/PLC/LESE can act as an electrochemical sensor for lead ions, as revealed by square wave anodic stripping voltammetry (SWASV). Impressively, a wide linear response within the Pb2+ concentration range of 1-180 mu g L-1 and an ultralow detection limit of 0.17 mu g L-1 (S/N = 3) for Pb2+ were obtained. The developed sensor also displayed excellent repeatability, stability, reproducibility, and reliability. Finally, the prepared IL/PLC/LESE-based sensor platform was successfully used to determine real water samples, and results were satisfactory. (C) 2018 Published by Elsevier Ltd.
机译:这项工作通过使用直接激光雕刻工艺报告小型化,柔性电化学传感器的制造,该过程将商业聚酰亚胺(PI)膜转化为激光雕刻的石墨烯电极(Lege)。在显着提高电化学性能方面,验证了活化程序是必要的。具有多孔3D形态学的微图案化的Lege可以通过L-半胱氨酸的原位电化学聚合形成聚 - (L-半胱氨酸)(PLC)制型Lege(PLC / Lege)。 PLC / LEGE进一步用离子液体(IL)装饰。 Lege的扩大的比表面积和PLC的特异性络合能力以及IL的良好导电性的组合赋予新设计的IL / PLC / LESE,具有丰富的活性位点,大型活性表面积和快速电子 - 传输能力。因此,IL / PLC / LESE可以用作铅离子的电化学传感器,如方波阳极剥离伏安法(SWASV)所揭示的。获得PB2 +浓度范围内的宽线性响应,1-180μmg1-1和Pb2 +的0.17μgl-1(s / n = 3)的超低检测限。开发的传感器还显示出优异的重复性,稳定性,再现性和可靠性。最后,成功地使用制备的IL / PLC / LESE的传感器平台来确定真实的水样,结果令人满意。 (c)2018年由elestvier有限公司发布

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