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首页> 外文期刊>ACS applied materials & interfaces >Persistent Luminescence Hole-Type Materials by Design: Transition-Metal-Doped Carbon Allotrope and Carbides
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Persistent Luminescence Hole-Type Materials by Design: Transition-Metal-Doped Carbon Allotrope and Carbides

机译:持久性发光孔型材料的设计:过渡金属掺杂的碳同素异形体和碳化物

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摘要

Electron traps play a crucial role in a wide variety of compounds of persistent luminescence (PL) materials. However, little attention has been placed on the hole-trap-type PL materials. In this study, a novel hole-dominated persistent luminescence (PL) mechanism is predicted. The mechanism is validated in the night pearl diamond (NPD): composed of lonsdaleite with ultralong persistent luminescence (PL) (more than 72 h). The computed band structures suggest that the Fe ion dopant in lonsdaleite is responsible for the luminescence of NPD due to the desired defect levels within the band gap for electronic transition. Other possible impurity defects in lonsdaleite, such as K, Ca, Mg, Zn, or Tl dopants, or C vacancy can also serve as the hole-trap centers to enhance the PL. Among other 3d transition-metal-ion dopants considered, Cr and Mn ions are predicted to give rise to PL property. The predicted PL mechanism via transition-metal doping of lonsdaleite offers an exciting opportunity for engineering new PL materials by design.
机译:电子陷阱在各种持久发光(PL)材料的复合物中起着至关重要的作用。然而,对空穴陷阱型PL材料的关注很少。在这项研究中,预测了一种新型的以空穴为主导的持续发光(PL)机制。该机制在夜珍珠钻石(NPD)中得到了验证:该钻石由具有​​超长持续发光(PL)(超过72小时)的长方钠石组成。计算出的能带结构表明,由于用于电子跃迁的带隙内所需的缺陷水平,在隆斯达莱岩中的Fe离子掺杂剂负责NPD的发光。硅灰石中其他可能的杂质缺陷,例如K,Ca,Mg,Zn或Tl掺杂剂或C空位,也可以用作空穴陷阱中心,以增强PL。在考虑的其他3d过渡金属离子掺杂剂中,Cr和Mn离子预计会产生PL特性。通过对隆斯达莱石进行过渡金属掺杂而预测的PL机理为通过设计对新型PL材料进行工程设计提供了令人兴奋的机会。

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