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首页> 外文期刊>Nano Energy >Construction of self-powered cytosensing device based on ZnO nanodisks@g-C3N4 quantum dots and application in the detection of CCRF-CEM cells
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Construction of self-powered cytosensing device based on ZnO nanodisks@g-C3N4 quantum dots and application in the detection of CCRF-CEM cells

机译:基于ZnO Nanodisks @ G-C3N4量子点的自动力学胞质晶体施工及在CCRF-CEM细胞检测中的应用

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摘要

We herein report a self-powered and renewable cytosensing device based on ZnO nanodisks(NDs)@g-C3N4 quantum dots. The device features enhanced photoelectrochemical (PEC) activity compared to ZnO NDs or gC(3)N(4) QDs alone. The enhanced PEC ability is attributed to the synergistic effect of the high visible light sensitivity of g-C3N4 QDs and the staggered band alignment heterojunction structure with suitable band offset, which affords higher photoelectron transfer and separation efficiency. In addition, the hybridization of g-C3N4 QDs further accelerates interfacial electron transfer and blocks recombination between electron donors and photogenerated holes. The device was applied to the detection of CCRF-CEM cells. By conjugation to Sgc8c aptamer, which preferentially interacts with membrane-bound PTK7 on CCRF-CEM membranes, capture of target CCRF-CEM cells resulted in a decrease in apparent power output, which was then exploited for the ultrasensitive detection of the target cells. This decrease in power output can be recovered by simply increasing the temperature to release the cells, thus recycling the cytosensing performance. The device displayed a linear relationship between the change of power output and the logarithm of the cell concentration from 20 to 20,000 cell/mL (R-2 = 0.9837) and a detection limit down to 20 cell/mL, as well as excellent selectivity and reproducibility. Thus, this ZnO NDs@g-C3N4 QDs-based device exhibits high potential for the detection of CCRFCEM cells.
机译:我们在此报告了基于Zno Nanodisks(NDS)@ G-C3N4量子点的自给力和可再生的细胞化装置。与ZnO NDS或GC(3)N(4)QD相比,该器件具有增强的光电化学(PEC)活性。增强的PEC能力归因于G-C3N4 QDS的高可见光敏感性的协同效应和具有合适的带偏移的交错带对准异质结结构,其提供更高的光电子传递和分离效率。另外,G-C3N4QD的杂交进一步加速了界面电子转移并阻塞电子供体和光生孔之间的重组。将该装置应用于CCRF-CEM细胞的检测。通过缀合到SGC8C适体,其优先与CCRF-CEM膜上的膜结合的PTK7相互作用,靶CCRF-CEM细胞的捕获导致表观功率输出的减少,然后利用对靶细胞的超敏检测。通过简单地增加温度以释放细胞,可以回收功率输出的这种降低,从而回收胞质化性性能。该器件显示电力输出变化与电池浓度的变化与20至20,000个细胞/ ml(R-2 = 0.9837)的对数之间的线性关系,检测限为20个细胞/ mL,以及优异的选择性和优异的选择性和再现性。因此,该基于ZnO NDS @ G-C3N4 QDS的装置具有检测CCRFEM细胞的高潜力。

著录项

  • 来源
    《Nano Energy》 |2018年第2018期|共9页
  • 作者单位

    Univ Jinan Sch Chem &

    Chem Engn Key Lab Interfacial React &

    Sensing Anal Univ Sha Jinan 250022 Shandong Peoples R China;

    Univ Florida Dept Chem Ctr Res Bio Nano Interface Gainesville FL 32611 USA;

    Univ Jinan Sch Chem &

    Chem Engn Key Lab Interfacial React &

    Sensing Anal Univ Sha Jinan 250022 Shandong Peoples R China;

    Univ Jinan Sch Chem &

    Chem Engn Key Lab Interfacial React &

    Sensing Anal Univ Sha Jinan 250022 Shandong Peoples R China;

    Univ Jinan Sch Chem &

    Chem Engn Key Lab Interfacial React &

    Sensing Anal Univ Sha Jinan 250022 Shandong Peoples R China;

    Univ Florida Dept Chem Ctr Res Bio Nano Interface Gainesville FL 32611 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 能源与动力工程;
  • 关键词

    Self-powered; Regeneration; Photoelectrochemistry; Heterojuncture; Cytosensing;

    机译:自动;再生;光电化学;异丙细胞;胞嘧化;

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