首页> 外文期刊>Wiley Interdisciplinary Reviews. Developmental Biology >Advances in plasmon-enhanced upconversion luminescence phenomena and their possible effect on light harvesting for energy applications
【24h】

Advances in plasmon-enhanced upconversion luminescence phenomena and their possible effect on light harvesting for energy applications

机译:等离子体增强的上变化发光现象及其对能源应用的光收获的可能影响

获取原文
获取原文并翻译 | 示例
           

摘要

The focus of the review is on the recent advances of inorganic materials used for upconversion luminescence as well as the effect of plasmonic metals on the efficiency of the overall system. Central to the review is the effect of these upconverting luminescence materials coupled with plasmonic metals on photovoltaic cells and photocatalysts performance. The diffuse nature of sun light on earth (low flux) and its weak energy (low frequency) are the main hurdles for practical applications related to energy-intensive processes. Upconversion luminescence materials increase light energy (high frequency) with weak efficiency, and when combined with plasmonics (potentially providing high local light flux), the overall efficiency of the system can be improved. Examples in this review are exclusively based on lanthanide compounds as light-converting devices and on Au and Ag as plasmonic metals. Due to the so called 'lanthanides contraction,' the f-orbitals of lanthanide cations are shielded from the outside environment (chemical bonds) when compared to early transition metals. This and the many energy levels associated with these f-orbitals make them (particularly the Ln(3+) 4f(10), 4f(11), 4f(12), and 4f(13)) the most suitable materials for multiple energy transfer systems so far. While upconversion luminescence was first observed over half a century ago, since the pioneering work of Auzel, coupling it with plasmonics has only attracted attention in the last few years, and a limited amount of work is currently available. This review has compiled representative work in the field with the aim to motivate researchers to exploit this concept, which is central to light-matter interaction, and its effect on chemical reactions relevant to energy and the environment. (C) 2017 Wiley Periodicals, Inc.
机译:审查的重点是最近用于上转换发光的无机材料的进展以及等离子体金属对整个系统效率的影响。审查中的核心是这些上变频器材料与光伏电池和光催化剂性能相结合的效果。地球上的太阳光的漫射性质(低通量)及其弱能量(低频)是与能源密集型工艺相关的实际应用的主要障碍。上变发光材料具有较弱的效率(高频率),效率较弱,并且与血管分子相结合(可能提供高局部光通量)时,可以提高系统的整体效率。本次综述中的实例仅基于镧系元素化合物作为光转换装置和Au和Ag作为等离子体金属。由于所谓的“镧系元素收缩,”与早期过渡金属相比,镧系元素阳离子的F轨道被屏蔽从外部环境(化学键)。这和与这些F轨道相关的许多能量水平使它们(特别是LN(3+)4F(10),4F(11),4F(12)和4F(13))最合适的多种能量到目前为止转移系统。虽然在半个世纪以前首次观察到升级发光,但由于Auzel的开创性工作,偶联用血浆偶联,在过去几年中只引起了受关注,目前可获得有限的工作。该评论已编制该领域的代表性工作,目的是激励研究人员利用这种概念,这是淡出淡出互动的核心,以及它对与能源和环境相关的化学反应的影响。 (c)2017 Wiley期刊,Inc。

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