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Temperature-Independent Lifetime and Thermometer Operated in a Biological Window of Upconverting NaErF4 Nanocrystals

机译:在上转换NaErF4纳米晶体的生物窗口中运行的与温度无关的寿命和温度计

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摘要

Lifetime of lanthanide luminescence basically decreases with increasing the ambient temperature. In this work, we developed NaErF core–shell nanocrystals with compensation of the lifetime variation with temperature. Upconversion lifetime of various emissions remains substantially unchanged as increasing the ambient temperature, upon 980/1530 nm excitation. The concentrated dopants, leading to extremely strong interactions between them, are responsible for the unique temperature-independent lifetime. Besides, upconversion mechanisms of NaErF core-only and core–shell nanocrystals under 980 and 1530 nm excitations were comparatively investigated. On the basis of luminescent ratiometric method, we demonstrated the optical thermometry using non-thermally coupled F and I emissions upon 1530 nm excitation, favoring the temperature monitoring in vivo due to both excitation and emissions fall in the biological window. The formed NaErF core–shell nanocrystals with ultra-small particle size, highly efficient upconversion luminescence, unique temperature-independent lifetimes, and thermometry operated in a biological window, are versatile in applications such as anti-counterfeiting, time-domain manipulation, and biological thermal probes.
机译:镧系元素发光的寿命随着环境温度的升高而基本减少。在这项工作中,我们开发了能补偿寿命随温度变化的NaErF核-壳纳米晶体。在980/1530 nm激发后,随着环境温度的升高,各种发射的上转换寿命基本上保持不变。浓缩的掺杂剂会导致它们之间极强的相互作用,这是与温度无关的独特寿命的原因。此外,比较研究了NaErF纯核和核壳纳米晶体在980和1530 nm激发下的上转换机理。基于发光比例法,我们展示了在1530 nm激发下使用非热耦合F和I发射的光学测温法,由于激发和发射均落在生物窗口中,因此有利于体内温度监测。形成的NaErF核壳纳米晶体具有超小粒径,高效的上转换发光,独特的与温度无关的寿命以及在生物窗口中运行的测温法,在防伪,时域操作和生物学等应用中具有多种用途热探头。

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