首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Efficient energy transfer from ZnO to Nd~(3+) ions in Nd-doped ZnO films deposited by magnetron reactive sputtering
【24h】

Efficient energy transfer from ZnO to Nd~(3+) ions in Nd-doped ZnO films deposited by magnetron reactive sputtering

机译:磁控反应溅射沉积Nd掺杂ZnO薄膜中ZnO到Nd〜(3+)离子的有效能量转移

获取原文
获取原文并翻译 | 示例
           

摘要

In this paper, a detailed study of the luminescent properties of Nd~(3+) ions in sputtered ZnO thin films is reported for the first time. Experimental evidence is provided showing that Nd is inserted and optically active in the ZnO matrix. Despite the small amount (<2%) of rare earth in these thin ZnO films, intense luminescence signals have been collected, indicating efficient infrared emission of Nd~(3+) in ZnO. Direct excitation of Nd~(3+) ions in the ZnO matrix was possible, suggesting that most of the Nd atoms are in the ~(3+) form at all deposition temperatures. Moreover, intense Nd~(3+) emission has been recorded also when the host was excited, indicating that an efficient energy transfer occurs from ZnO to Nd ions. Both the transfer efficiency and the Nd~(3+) concentration seem to depend on the deposition temperature. In particular, indirect excitation of the sample deposited at 400 °C generates a richer emission pattern compared to lower temperatures. The careful analysis of the luminescence data indicated that the new pattern comes from Nd sites that cannot be efficiently directly excited, but that are characterized by intense emission under indirect excitation of the host. The possible transfer mechanisms leading to this behavior will be outlined.
机译:本文首次报道了溅射ZnO薄膜中Nd〜(3+)离子发光特性的详细研究。提供的实验证据表明Nd已插入到ZnO基质中并具有光学活性。尽管这些ZnO薄膜中的稀土含量很少(<2%),但仍收集到了强烈的发光信号,表明ZnO中Nd〜(3+)的有效红外发射。 ZnO基体中Nd〜(3+)离子的直接激发是可能的,这表明在所有沉积温度下,大多数Nd原子都是〜(3+)形式。此外,当基质被激发时,还记录到强烈的Nd〜(3+)发射,表明从ZnO到Nd离子发生了有效的能量转移。传输效率和Nd〜(3+)浓度似乎都取决于沉积温度。特别是,与较低温度相比,间接激发在400°C下沉积的样品会产生更丰富的发射图。对发光数据的仔细分析表明,新的图形来自不能有效地直接激发的Nd部位,但其特征是在宿主的间接激发下强烈发射。将概述导致此行为的可能的传输机制。

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