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钙掺杂的 CuCoO 纳米片的结构、光学和电学性能研究。

Investigation of the structural, optical and electrical properties of Ca doped CuCoO nanosheets.

机构信息

State Key Laboratory of Silicate Materials for Architectures, Wuhan University of Technology, Wuhan 430070, P. R. China.

出版信息

Dalton Trans. 2019 Sep 17;48(36):13753-13759. doi: 10.1039/c9dt02619c.

Abstract

In this work, we present the hydrothermal synthesis of delafossite oxide Ca-doped CuCoO2 (CCCaO) nanosheets at a low temperature of 100 °C. The crystal phase, morphology and chemical composition of these CuCoO2 (CCO) based samples were comprehensively characterized by powder X-ray diffraction (XRD), field-emission scanning electron microscopy (FESEM), transmission electron microscopy (TEM), X-ray photoelectron spectroscopy (XPS), and Raman spectroscopy. The size of CCCaO nanosheets decreased with increasing Ca dopant concentration, and the optimized CCCaO nanosheets (∼490 nm in lateral size and ∼15 nm in thickness) were much smaller than CCO nanocrystals (∼540 nm in lateral size and 85 nm in thickness). The specific surface area of these CCO based samples increased with increasing Ca content, and the optimized CCCaO nanosheets present a high BET surface area of 28 m2 g-1. XPS and Raman spectroscopy analyses indicate Ca2+ dopant substitution on the Cu+ site in CCCaO nanosheets. Moreover, the effects of Ca2+ doping on the optical and electrical properties of these CCO based samples were further studied. The optical properties measured at room temperature show high absorbability (up to 90%) in the ultraviolet-visible-near infrared (UV-VIS-NIR) region, and the indirect band gap shows a significant blue-shift with increasing Ca2+ concentration. The CCO nanocrystals possess a higher electrical conductivity than the CCCaO nanosheets, and present good conductivities of around 12.81, 4.47 and 0.69 s m-1 for the CCO and CCCaO samples at room temperature. The facile fabrication process, tunable crystallite sizes, and excellent optical absorption and electrical properties of these CCO based nanomaterials are encouraging for the development of future applications in photoelectric devices.

摘要

在这项工作中,我们在 100°C 的低温下展示了水热合成的掺钙的 Delafossite 氧化物 Ca 掺杂 CuCoO2(CCCaO)纳米片。通过粉末 X 射线衍射(XRD)、场发射扫描电子显微镜(FESEM)、透射电子显微镜(TEM)、X 射线光电子能谱(XPS)和拉曼光谱,全面表征了这些基于 CuCoO2(CCO)的样品的晶体相、形貌和化学成分。随着 Ca 掺杂浓度的增加,CCCaO 纳米片的尺寸减小,优化的 CCCaO 纳米片(横向尺寸约为 490nm,厚度约为 15nm)比 CCO 纳米晶体(横向尺寸约为 540nm,厚度约为 85nm)小得多。这些 CCO 基样品的比表面积随着 Ca 含量的增加而增加,优化的 CCCaO 纳米片具有高 BET 表面积 28m2 g-1。XPS 和拉曼光谱分析表明,CCCaO 纳米片中存在 Ca2+掺杂在 Cu+位上的取代。此外,还进一步研究了 Ca2+掺杂对这些 CCO 基样品的光学和电学性能的影响。在室温下测量的光学性质显示,在紫外可见近红外(UV-VIS-NIR)区域具有高吸收率(高达 90%),随着 Ca2+浓度的增加,间接带隙呈现出显著的蓝移。CCO 纳米晶体的电导率高于 CCCaO 纳米片,室温下 CCO 和 CCCaO 样品的电导率分别约为 12.81、4.47 和 0.69 S m-1,表现出良好的导电性。这些基于 CCO 的纳米材料具有易于制备的工艺、可调的晶粒尺寸、优异的光吸收和电性能,这为未来在光电设备中的应用发展提供了希望。

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