光子上转换
紫外线
材料科学
镧系元素
激发态
纳米颗粒
光化学
红外线的
激发
紫外线
光催化
光电子学
纳米技术
兴奋剂
化学
光学
离子
原子物理学
催化作用
物理
生物化学
有机化学
量子力学
作者
Haoran Zhang,Yachong Liu,Rong Jin,Sanyang Han,Qianqian Su
标识
DOI:10.1002/asia.202200309
摘要
Abstract Multiphoton upconversion that can convert near‐infrared irradiation into ultraviolet emission offers many unique opportunities for photocatalysis and phototherapy. However, the high‐lying excited states of lanthanide emitters are often quenched by the interior lattice defects and deleterious interactions among different lanthanides, resulting in weak ultraviolet emission. Here, we describe a novel excitation energy lock‐in approach to boost ultraviolet upconversion emission in a new class of multilayer core‐shell nanoparticles with a gadolinium‐rich core domain. Remarkably, we observe more than 70‐fold enhancements in Gd 3+ emission from the designed nanoparticles compared with the conventional nanoparticles. Our mechanistic investigation reveals that the combination of energy migration over the core domain and optically inert NaYF 4 interlayer can effectively confine the excitation energy and thus lead to intense multiphoton ultraviolet emission in upconversion nanostructures. We further achieve a 35.6% increase in photocatalytic reactivity and 26.5% in reactive oxygen species production yield in ZnO‐coated upconversion nanocomposites under 808‐nm excitation. This study provides a new insight to energy transfer mechanism in lanthanide‐doped nanoparticles and offers an exciting avenue for exploring novel near‐infrared photocatalysts.
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