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MnO_2 polymorph selection for non-enzymatic glucose detection: An integrated experimental and density functional theory investigation

机译:用于非酶促葡萄糖检测的MNO_2多晶型物选择:综合实验和密度泛函理论调查

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Herein, different polymorphs (alpha, beta, gamma and delta) of MnO2 have been synthesized and its electrochemical sensing behaviour was scrutinized with glucose as a probe molecule. Comparative morphology and structural features of all the polymorphs of MnO2 were investigated through Field emission scanning electron microscopy (FESEM), Xray diffraction (XRD), micro-Raman and X-ray photoelectron spectroscopy (XPS). Evaluation of electrocatalytic activity towards glucose oxidation was performed by cyclic voltammetry and chronoamperometry techniques. Among all, alpha- MnO2 has augmented sensitivity over the tested range (5 mu M-855 mu M) and the oxidation reaction is governed by a diffusion controlled process. To support our experimental findings, bonding and charge transfer mechanism of glucose molecules on different phases of MnO2 surfaces have been analysed by employing the state of the art Density Functional Theory (DFT) simulations. Higher binding energy of the glucose molecule and the maximum charge transfer from O 2p orbital of glucose to Mn 3d orbital of alpha- MnO2 justifies the higher glucose sensing activity of the alpha phase as observed in the experiment. Furthermore, a wide linear range (5 mu M to 855 mu M), good specificity and stability of the designed sensor widens its application in the future sensing platform.
机译:这里,已经合成了MnO 2的不同多晶型物(α,β,γ和δ),并且用葡萄糖作为探针分子仔细检查其电化学感测行为。通过现场发射扫描电子显微镜(FeSEM),X射线衍射(XRD),微拉曼和X射线光电子谱(XPS)研究了MNO2所有多晶型物的比较形态和结构特征。通过循环伏安法和计时术技术进行对葡萄糖氧化的电催化活性的评价。其中,α-MnO2在测试范围内增加了敏感性(5μm-855μm),氧化反应由扩散控制过程控制。为了支持我们的实验结果,通过采用现实密度泛函理论(DFT)模拟,分析了MNO2表面不同阶段的葡萄糖分子的粘合和电荷转移机制。葡萄糖分子的较高结合能量和葡萄糖O 2P轨道的最大电荷转移到α-MnO2的Mn 3D轨道标志着在实验中观察到的α相的较高葡萄糖感测活度。此外,宽线性范围(5亩至855μm),设计传感器的良好特异性和稳定性在未来的传感平台中扩大了其应用。

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