首页> 外文期刊>Mikrochimica Acta: An International Journal for Physical and Chemical Methods of Analysis >A nanocomposite consisting of cuprous oxide supported on graphitic carbon nitride nanosheets for non-enzymatic electrochemical sensing of 8-hydroxy-2 '-deoxyguanosine
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A nanocomposite consisting of cuprous oxide supported on graphitic carbon nitride nanosheets for non-enzymatic electrochemical sensing of 8-hydroxy-2 '-deoxyguanosine

机译:一种纳米复合材料,由支撑在石墨碳氮化物纳米片上的氧化酯,用于8-羟基-2'-二氧核苷酸的非酶促电化学传感

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摘要

Graphitic carbon nitrides supported cuprous oxide architecture is reported as an efficient electrode material for supercapacitors, especially due to its high charge-transfer conductivity of the electrochemical devices. Herein, we present an electrochemical sensor to specifically detect 8-hydroxy-2 '-deoxyguanosine (8-HDG) oxidative stress biomarker using graphitic carbon nitrides that decorate a cuprous oxide cubes modified electrode. The fabricated electrochemical sensor was characterized and proved by electrochemical methods, EDX, FESEM, and amperometry (i-t). In the presence of 8-hydroxy-2 '-deoxyguanosine (8-HDG), the effective interaction between graphitic carbon nitrides and 8-HDG favors the accumulation on the Cu2O/g-C3N4/GCE, which increases the electrocatalytic property and amperometric response. The proposed electrochemical sensor exhibits a wide linear range for 8-HDG in 0.1 M phosphate buffer (pH 7.0) from 25 nM to 0.91 mM, and the limit of detection (LOD) is 4.5 nM. The stability of the Cu2O/g-C3N4/GCE is improved when stored at 4 degrees C. The repeatability and reproducibility of this electrochemical sensor is good and the sensor retains its current response for 8-HDG detection also after long time storage. The modified sensor proved high selectivity and sensitivity for 8-HDG, which made it possible to determine 8-HDG in biological samples. Furthermore, the Cu2O/g-C3N4/GCE offered a favorable electron transfer between the Cu2O/g-C(3)N(4)and the electrode interface compared to Cu2O/GCE, g-C3N4/GCE, and unmodified GCE.
机译:支撑亚铜氧化亚铜亚溴化铜氧化物作为超级电容器的有效电极材料报告,特别是由于其电化学装置的高电荷传递电导率。在此,我们介绍了一种电化学传感器,以特异性地检测8-羟基-2'-氧化胍植物(8-HDG)氧化应激生物标志物,该氮化物碳氮化物装饰了氧化亚铜立方体改性电极。通过电化学方法,EDX,FESEM和Amperometry(I-T)表征和证明了制造的电化学传感器。在存在8-羟基-2'-氧化胍(8-HDG)的情况下,石墨碳氮化物与8-HDG之间的有效相互作用涉及Cu2O / G-C3N4 / GCE上的积累,这增加了电催化性和电流响应。所提出的电化学传感器在0.1M磷酸盐缓冲液(pH7.0)中显示出8-HDG的宽线性范围,从25nm至0.91mm,检测极限(LOD)为4.5nm。当储存在4℃时,Cu2O / G-C3N4 / GCE的稳定性得到改善。该电化学传感器的可重复性和再现性是良好的,并且在长时间储存​​之后,传感器也保持其电流响应8-HDG检测。修饰的传感器证明了8-HDG的高选择性和灵敏度,这使得可以在生物样品中确定8-HDG。此外,与Cu 2 O / GCE,G-C3N4 / GCE和未改性的GCE相比,Cu 2 O / G-C3N4 / GCE在Cu 2 O / G-C(3)N(4)和电极界面之间提供了有利的电子转移。

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