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首页> 外文期刊>ACS applied materials & interfaces >Dual-Modal Photon Upconverting and Downshifting Emissions from Ultra-stable CsPbBr3 Perovskite Nanocrystals Triggered by Co-Growth of Tm:NaYbF4 Nanocrystals in Glass
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Dual-Modal Photon Upconverting and Downshifting Emissions from Ultra-stable CsPbBr3 Perovskite Nanocrystals Triggered by Co-Growth of Tm:NaYbF4 Nanocrystals in Glass

机译:由TM共生成的超稳定CSPBBR3钙钛矿纳米晶体的双模光子上升压和倒下排放量:玻璃中的Naybf4纳米晶体引发

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摘要

This work reports a novel dual-phase glass containing Tm:NaYbF4 upconverting nanocrystals (UCNCs) and CsPbBr3 perovskite nanocrystals (PNCs). The advantages of this kind of nanocomposite are that it provides a solid inorganic glass host for the in situ co-growth of UCNCs and PNCs, and protects PNCs against decomposition affected by the external environment. Tm:NaYbF4 NC-sensitized stable CsPbBr3 PNCs photon UC emission in PNCs is achieved under the irradiation of a 980 nm near-infrared (NIR) laser, and the mechanism is evidenced to be radiative energy transfer (ET) from Tm3+: (1)G(4) state to PNCs rather than nonradiative Forster resonance ET. Consequently, the decay lifetime of exciton recombination is remarkably lengthened from intrinsic nanoseconds to milliseconds since carriers in PNCs are fed from the longlifetime Tm3+ intermediate state. Under the simultaneous excitation of the ultraviolet (UV) light and NIR laser, dual-modal photon UC and downshifting (DS) emissions from ultra-stable CsPbBr3 PNCs in the glass are observed, and the combined UC/DS emitting color can be easily altered by modifying the pumping light power. In addition, UC exciton recombination and Tm3+ 4f-4f transitions are found to be highly temperature sensitive. All these unique emissive features enable the practical applications of the developed dual-phase glass in advanced anti-counterfeit and accurate temperature detection.
机译:该工作报告了一种新型双相玻璃含有Tm:Naybf4上晶纳米晶体(UCNC)和CSPBBR3钙钛矿纳米晶体(PNC)。这种纳米复合材料的优点是它为UCNC和PNC的原位共生提供固体无机玻璃宿主,并保护PNC免受受外部环境影响的分解。 TM:NyBF4 NC敏化稳定的CSPBBR3 PNC在PNC中的光子UC发射在980nm近红外(NIR)激光器的照射下实现,并且可以从TM3 +的辐射能量转移(ET)中实现:(1) g(4)州至PNC,而不是非阵容的福斯特共鸣等。因此,由于PNCS中的载体从Longlifime TM3 +中间状态送入,因此来自固有纳秒至毫秒的衰减寿命非常延长至毫秒。在紫外线(UV)光和NIR激光器的同时激发下,观察到玻璃中的超稳定CSPBBR3 PNC的双模态光子UC和下斑(DS)排放,并且可以容易地改变组合的UC / DS发光通过修改泵浦光功率。此外,发现UC Exciton重组和TM3 + 4F-4F转变是高温敏感的。所有这些独特的发光功能都能实现开发的双相玻璃在先进的防伪和精确的温度检测中的实际应用。

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