首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Effectively realizing broadband spectral conversion of UV/visible to near-infrared emission in (Na,K)Mg(La,Gd)TeO6:Mn4+,Nd3+,Yb3+ materials for c-Si solar cells via efficient energy transfer
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Effectively realizing broadband spectral conversion of UV/visible to near-infrared emission in (Na,K)Mg(La,Gd)TeO6:Mn4+,Nd3+,Yb3+ materials for c-Si solar cells via efficient energy transfer

机译:通过有效的能量转移,有效地实现(Na,K)Mg(La,Gd)TeO6:Mn4 +,Nd3 +,YB3 +材料的近红外发射对近红外发射的宽带光谱转化率通过有效的能量转移

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In this work, a series of (Na,K)Mg(La,Gd)TeO6:Mn4+,Nd3+,Yb3+ materials were prepared via a high-temperature solid-state reaction method. As reported before, certain Mn4+ singly doped samples present good red luminescence properties, showing emission bands at around 700 nm upon excitation with UV/n-UV/blue light. When Mn4+ and Nd3+ were co-doped into the same host, effective energy transfer from Mn4+ to Nd3+ ions was inferred from the spectral overlap of the Mn4+ emission and Nd3+ excitation bands. The variation of the emission bands upon 365 nm UV excitation with fixed Mn4+ concentration and varying Nd3+ concentration in phosphors can validate this energy transfer process from Mn4+ to Nd3+ ions. In addition, comparison of the excitation spectra monitored at the Nd3+ emission peaks to those monitored at the Mn4+ emission bands and the decrease of the Mn4+ decay times supplied more evidence for the energy transfer phenomenon from Mn4+ to Nd3+ ions in these Mn4+,Nd3+ co-doped samples. Since the energy transfer from Nd3+ to Yb3+ ions has been well reported before, we co-doped Yb3+ in our Mn4+,Nd3+ co-doped samples to show that Nd3+ can be a bridging ion to regulate the energy transfer from Mn4+ to Yb3+ ions for the first time, which was confirmed from the analysis of the excitation spectra and decay times. This can be considered as a novel method to enhance the energy transfer from Mn4+ to Yb3+ ions. Based on the energy transfer from Mn4+ to Nd3+ and then to Yb3+, UV/visible luminescence can be effectively converted into near-infrared emission, allowing a better spectral response for c-Si solar cells, which suggests a possible enhancement of the conversion efficiency of such c-Si solar cells.
机译:在这项工作中,通过高温固态反应方法制备了一系列(Na,K)Mg(La,Gd)TeO6:Mn4 +,Nd3 +,YB3 +材料。如前所述,某些Mn4 +单掺杂样品具有良好的红色发光性质,在用UV / N-UV /蓝光激发时显示出约700nm的发射带。当MN4 +和ND3 +共掺杂到同一宿主中时,从MN4 +至Nd3 +离子的有效能量从MN4 +发射和ND3 +激发带的光谱重叠推断出来。用固定Mn4 +浓度和不同的磷光体的不同Nd3 +浓度的发射带在365nm uV激发时的变化可以将该能量转移过程从Mn4 +验证到Nd3 +离子。另外,在ND3 +发射峰上监测的激发光谱与在MN4 +发射带中监测的那些的比较和MN4 +衰减时间的减少提供了这些MN4 +,ND3 + CO-中的MN4 +至Nd3 +离子的能量转移现象的更多证据掺杂样品。由于从ND3 +至Yb3 +离子的能量转移之前,我们在我们的MN4 +,ND3 +共掺杂样品中掺杂YB3 +以显示ND3 +可以是桥接离子,以调节从MN4 +到YB3 +离子的能量转移第一次,从激发光谱和衰减时间的分析中确认了这一点。这可以被认为是增强Mn4 +至Yb3 +离子的能量转移的新方法。基于Mn4 +至Nd3 +的能量转移,然后将UV /可见发光可以有效地转换为近红外发射,允许C-Si太阳能电池的更好的光谱响应,这表明可以提高转换效率这种C-Si太阳能电池。

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