...
首页> 外文期刊>Nanotechnology >CuO/Cu core/shell nanostructured photoconductive devices by hot water treatment and high pressure sputtering techniques
【24h】

CuO/Cu core/shell nanostructured photoconductive devices by hot water treatment and high pressure sputtering techniques

机译:CuO / Cu芯/壳纳米结构光电导装置通过热水处理和高压溅射技术

获取原文
获取原文并翻译 | 示例

摘要

This work demonstrates the fabrication of simple photoconductive devices based on CuO/Cu core/ shell nanostructured heterojunction that performs notable photocurrent response. Copper oxide (CuO) nanoleaf structures (NLs) have been successfully grown on ITO-coated glass substrate via a simple hot water treatment (HWT) method. A conformal Cu shell was fabricated by high pressure sputtered (HIPS) deposition technique on the CuO nanoleaves to produce NLs-core/metal shell photoconductive devices. For comparison, CuO thin film (IF) was prepared by the thermal oxidation method to manufacture the conventional planar thin film devices. Results showed that the HWT method resulted in the formation of dense 3D CuO nanoleaves on ITO/glass substrate with a high surface area. CuO NLs showed higher optical absorption than CuO IF in the ultraviolet and visible spectrum. Further, the optical band gaps of CuO NLs and IF samples have been estimated from Touc's plot to be 1.45 0.10 eV and 1.63 0.20 eV, respectively. Current density voltage measurements' result revealed that core/shell devices have superior photocurrent response compared to IF devices. The average photocurrent density at zero-bias for the NLs devices was 23.5 2.0 A cm-2 and for IF devices was 6.7 1.0 A cm-2. Besides, NLs core/shell photoconductive devices exhibit a remarkable increase in photocurrent response values with increasing bias voltage compared to the increased values in IF devices. The results demonstrate that the devices based on HWT-NLs-core/HIPS-shell design showed a significant enhancement on the photoconductivity response compared with the conventional IF design. The performance enhancement can be attributed to improving light trapping, photocarriers generation-recombination times and carrier collection by introducing an alternative radial interface in core/shell design. Also, HWT CuO NLs geometry feature with the high surface area has worked to enhance light absorption that enables the design of high efficiency, functional and commercial photoconductive detectors.
机译:这项工作证明了基于CuO / Cu核心/壳纳米结构型异质结的简单光电导器的制造,所述异质结合性能进行显着的光电流反应。通过简单的热水处理(HWT)方法在ITO涂覆的玻璃基板上成功地生长了氧化铜(CuO)纳米叶纹结构(NLS)。通过CuO纳米物体上的高压溅射(HIPS)沉积技术制造共形Cu壳,以产生NLS-芯/金属壳光电导器。为了比较,通过热氧化方法制备CuO薄膜(IF)以制造传统的平面薄膜装置。结果表明,HWT方法导致在具有高表面积的ITO /玻璃基板上形成致密3D CuO纳米。 CuO NLS显示比紫外线和可见光谱中的COO比CUO更高的光学吸收。此外,CuO NLS的光带间隙分别从TOUC的曲线估计为1.45 0.10eV和1.63 0.20eV。电流密度电压测量结果显示,与设备相比,核心/壳体器件具有卓越的光电流响应。对于NLS器件的零偏压下的平均光电流密度为23.5 2.0 A CM-2,并且如果设备为6.7.7 1.0 A CM-2。此外,NLS芯/壳光电导装置在与IF器件中的增加的值相比增加了相比增加的偏置电压的光电流响应值的显着增加。结果表明,基于HWT-NLS-Core / HIPS-Shell设计的器件在与传统IF设计相比,对光电导响应的显着提高了显着提高。通过在核心/壳设计中引入替代径向界面,性能增强可归因于改善光捕获,光载体产生重组时间和载体收集。此外,具有高表面积的HWT CUO NLS几何特征已经致力于提高光吸收,使得能够设计高效率,功能和商业光电导探测器。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号