论文标题
YB3+物种形成和能量转移动力学在量子切割YB3+掺杂的CSPBCL3钙钛矿纳米晶体和单晶
Yb3+ speciation and energy-transfer dynamics in quantum-cutting Yb3+-doped CsPbCl3 perovskite nanocrystals and single crystals
论文作者
论文摘要
最近发现YB3+的无机金属 - 金属壁性钙钛矿(YB3+:CSPBX3,X = Cl,Br)显示出高效的量子切割,其中由材料吸收的单个蓝色或紫外光子的能量以YB3+Dopants的近封闭光照射的形式重新添加。已经报道了接近200 {%}的实验光致发光量子产率。作为将如此高的光致发光量子产率与可见宽带吸收结合的第一批量子切割材料,这些材料为提高太阳能技术的效率提供了独特的机会。但是,对于这种量子切割的基本起源知之甚少。在这里,我们描述了YB3+:CSPBCL3的可变温度和时间分辨的光致发光研究,分别是两种不同形式的 - 胶体纳米晶体和宏观单晶体。两种形式都显示出非常相似的光谱特性,表明量子切割是Yb3+:CspBx3组成本身的内在特性。在两种情况下,通过低温光致发光光谱观察到各种形式的Yb3+物种形成,但值得注意的是,量子切割均由相同的特定Yb3+物种主导。时间分辨的光致发光测量为量子切割机制中先前假设的中间状态提供了直接证据。该中间状态介导了从钙钛矿的光生激发状态到YB3+的发射激发态的松弛,因此具有至关重要的机械意义。在室温下,这种中间状态在几个picseconds内填充,并且在纳米晶体和单晶YB3+:CSPBCL3中的衰减时间仅为7 ns。讨论了这些观察的机械含义。
Yb3+-doped inorganic metal-halide perovskites (Yb3+:CsPbX3, X = Cl, Br) have recently been discovered to display highly efficient quantum cutting, in which the energy from individual blue or UV photons absorbed by the material is re-emitted in the form of pairs of near-infrared photons by Yb3+ dopants. Experimental photoluminescence quantum yields approaching 200{%} have been reported. As the first quantum-cutting materials that combine such high photoluminescence quantum yields with strong, broadband absorption in the visible, these materials offer unique opportunities for enhancing the efficiencies of solar technologies. Little is known about the fundamental origins of this quantum cutting, however. Here, we describe variable-temperature and time-resolved photoluminescence studies of Yb3+:CsPbCl3 in two disparate forms - colloidal nanocrystals and macroscopic single crystals. Both forms show very similar spectroscopic properties, demonstrating that quantum cutting is an intrinsic property of the Yb3+:CsPbX3 composition itself. Diverse Yb3+ speciation is observed in both forms by low-temperature photoluminescence spectroscopy, but remarkably, quantum cutting is dominated by the same specific Yb3+ species in both cases. Time-resolved photoluminescence measurements provide direct evidence of the previously hypothesized intermediate state in the quantum-cutting mechanism. This intermediate state mediates relaxation from the photogenerated excited state of the perovskite to the emissive excited state of Yb3+, and hence is of critical mechanistic importance. At room temperature, this intermediate state is populated within a few picoseconds and has a decay time of only ~ 7 ns in both nanocrystalline and single-crystal Yb3+:CsPbCl3. The mechanistic implications of these observations are discussed.