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A highly sensitive non-enzymatic hydrogen peroxide and hydrazine electrochemical sensor based on 3D micro-snowflake architectures of α-Fe2O3

机译:基于α-Fe2O3的3D微雪花架构的基于3D微雪花架构的高敏感的非酶过氧化氢和肼电化学传感器

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In the present work, well crystalline 3D micro-snowflake structured α-Fe _(2) O _(3) has been successfully synthesized on a large scale via a simple hydrothermal reaction by hydrolysis of a K _(3) Fe(CN) _(6) precursor. The structure, composition, purity and morphology of the synthesized α-Fe _(2) O _(3) samples are examined using powder X-ray diffraction (PXRD), field emission scanning electron microscopy (FESEM), transmission electron microscopy (TEM), energy dispersive X-ray spectroscopy (EDS), Fourier transform infrared (FTIR) spectroscopy and M?ssbauer spectroscopy. The FESEM and TEM images reveal that the sample exhibits a micro-snowflake like shape having six-fold symmetry with symmetric branching along each arm consisting of a long central trunk and secondary branches. The 3D micro-snowflake structured α-Fe _(2) O _(3) embedded ITO electrode exhibits high selectivity and sensitivity for electrochemical probing of hydrogen peroxide (H _(2) O _(2) ) and hydrazine (N _(2) H _(4) ) with a very low detection limit in a wide linear range. Amperometric measurements show a sensitivity of 7.16 μA mM ~(?1) cm ~(?2) in a wide linear range from 0.1 to 5.5 mM with the lowest detection limit of 0.01 mM (S/N = 3) towards H _(2) O _(2) sensing. The sample also exhibits a sensitivity of 24.03 μA mM ~(?1) cm ~(?2) in the linear range between 50 μM and 1340 μM with the lowest detection limit of 5 μM towards hydrazine detection. The excellent electrochemical activity of the sample is rendered to the presence of a large number of catalytic sites in the sample due to its 3D micro-snowflake like architecture. Good reproducibility, stability and selectivity suggest its suitability for the fabrication of H _(2) O _(2) and hydrazine sensors.
机译:在本作的工作中,通过通过水解K_(3)Fe(CN),通过简单的水热反应成功地合成了良好的结晶3D微雪花结构α-Fe _(2)O _(3) _(6)前体。使用粉末X射线衍射(PXRD),现场发射扫描电子显微镜(FESEM),透射电子显微镜(TEM)检查合成α-Fe _(2)O o _(3)样品的结构,组合物,纯度和形态。(FESEM)(TEM ),能量分散X射线光谱(EDS),傅里叶变换红外(FTIR)光谱和M?SSBauer光谱。 FeSEM和TEM图像揭示了样品表现出像具有六倍对称性的微雪花,其对称性分支沿着长中心躯干和次级分支组成。 3D微雪花结构α-Fe _(2)O _(3)嵌入式ITO电极对过氧化氢的电化学探测具有高选择性和灵敏度(H _(2)O _(2))和肼(N _( 2)H _(4))在宽线程范围内具有非常低的检测限。安培测量显示在宽线性范围内的7.16μAmm〜(Δ1)cm〜(Δ2)的灵敏度为0.1至5.5mm,最低检测限为0.01 mm(s / n = 3),朝向h _(2 )o _(2)感测。样品还表现出在50μm和1340μm之间的线性范围内的24.03μAmm〜(Δ1)cm〜(Δ2)的灵敏度,其朝向肼检测的最低检测限为5μm。由于其3D微雪花如架构,样品的优异电化学活性使样品中的大量催化位点的存在。良好的再现性,稳定性和选择性表明其适用于H _(2)O _(2)和肼传感器的制备。

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