首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Tuning the Bi3+-photoemission color over the entire visible region by manipulating secondary cations modulation in the ScVxP1-xO4:Bi3+ (0 <= x <= 1) solid solution
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Tuning the Bi3+-photoemission color over the entire visible region by manipulating secondary cations modulation in the ScVxP1-xO4:Bi3+ (0 <= x <= 1) solid solution

机译:通过操纵SCVXP1-XO4:Bi3 +(0 <= x <= 1)固溶解决方案中的二次阳离子调制在整个可见区域上调整BI3 + -Photoemission颜色

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摘要

Unlike rare earth (RE) (e.g., Eu2+) and non-RE (e.g., Mn2+) doped tunable solid solutions that frequently suffer from the visible re-absorption issue, the Bi3+ ion features the remarkable advantages of a strong UV excitation intensity and an excitation tail of less than 430 nm, giving Bi3+ a strong potential to solve the re-absorption issue for future lighting technology. Herein, we report a type of zircon-type ScVxP1-xO4:Bi3+ (0 <= x <= 1) emission-tunable solid solution that has a strong UV excitation intensity yet no significant light absorption. We reveal that gradual substitution of larger V ions for smaller P ions, which means expansion of the lattice cell, can shift the excitation edge from 295 to 385 nm, the excitation tail from 340 to 425 nm and emission position from 455 to 641 nm, without causing a large change to the Stokes shift. This spectral shifting is found to be a consequence of the complex dependence of the intra-ion and charge-transfer related transitions of Bi3+ with the crystal structure. Owing to the remarkable excitation-triggered multi-emission properties, we then discover that the ScVxP1-xO4:Bi3+ solid solution can serve as a type of potential material for anti-counterfeiting and information protection applications. This work can provide design insights into discovering more RE and non-RE doped tunable solid solutions in the future, through modulation of the secondary cations in the isostructural crystals.
机译:与罕见的地球(Re)(例如,Eu2 +)和非Re(例如,MN2 +)掺杂的可调谐固体溶液不同,经常遭受可见的再吸收问题,BI3 +离子具有强紫外线激发强度的显着优势和激发尾部小于430 nm,赋予Bi3 +强大的潜力来解决未来照明技术的再吸收问题。在此,我们报告了一种类型的锆型SCVXP1-XO4:Bi3 +(0 <= X <= 1)发射可调谐固体溶液,其具有强UV激励强度,但没有显着的光吸收。我们揭示了较小的P离子的逐渐取代较大的P离子,这意味着晶格细胞的膨胀,可以将激发边缘从295°5升至385nm,从340到425nm和455到641 nm的发射位置将激发尾换档。没有导致斯托克斯转变的大变化。发现该光谱移位是与晶体结构的离子内离子和电荷转移相关转变的复杂依赖性的结果。由于励磁触发的多排放性能显着,我们发现SCVXP1-XO4:Bi3 +固溶体可以用作防伪和信息保护应用的潜在材料。这项工作可以通过调制IsoStr发生器晶体中的二次阳离子来发现未来更多Re和非重新掺杂可调谐固体解决方案的设计见解。

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