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Yb,Nd,Er-doped upconversion nanoparticles: 980 nm versus 808 nm excitation

机译:Yb, Nd Er-doped上转换纳米粒子:980海里与808 nm激

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摘要

Yb,Nd,Er-doped upconversion nanoparticles (UCNPs) have attracted considerable interest as luminescent reporters for bioimaging, sensing, energy conversion/shaping, and anticounterfeiting due to their capability to convert multiple near-infrared (NIR) photons into shorter wavelength ultraviolet, visible or NIR luminescence by successive absorption of two or more NIR photons. This enables optical measurements in complex media with very little background and high penetration depths for bioimaging. The use of Nd3+ as substitute for the commonly employed sensitizer Yb3+ or in combination with Yb3+ shifts the excitation wavelength from about 980 nm, where the absorption of water can weaken upconversion luminescence, to about 800 nm, and laser-induced local overheating effects in cells, tissue, and live animal studies can be minimized. To systematically investigate the potential of Nd3+ doping, we assessed the performance of a set of similarly sized Yb3+,Nd3+,Er3+-doped core- and core-shell UCNPs of different particle architecture in water at broadly varied excitation power densities (P) with steady state and time-resolved fluorometry for excitation at 980 nm and 808 nm. As a measure for UCNPs performance, the P-dependent upconversion quantum yield (phi(UC)) and its saturation behavior were used as well as particle brightness (B-UC). Based upon spectroscopic measurements at both excitation wavelengths in water and in a lipid phantom and B-UC-based calculations of signal size at different penetration depths, conditions under which excitation at 808 nm is advantageous are derived and parameters for the further optimization of triple-doped UCNPs are given.
机译:Yb, Nd Er-doped上转换纳米粒子(UCNPs)吸引了相当大的兴趣吗发光记者bioimaging、传感、能量转换/塑造,anticounterfeiting由于他们的能力转换多个近红外(NIR)光子为短波长紫外、可见光或近红外光谱发光的连续吸收两个或两个更多的近红外光子。测量在复杂的媒体很少背景和高渗透深度bioimaging。通常采用敏化剂Yb3 +或结合Yb3 +转变激励波长从约980海里,水可以吸收削弱上转换发光,约800海里,激光感应的局部过热效应细胞,组织,活的动物研究可以最小化。系统地调查Nd3 +的潜力兴奋剂,我们评估了一组的性能同样大小的Yb3 + Nd3 + Er3核心,再版不同粒子的核壳UCNPs建筑在水中广泛多样励磁功率密度(P)与稳定状态和时间分辨荧光测定术激发980 nm和808 nm。性能,P-dependent上转换量子收益率(φ(加州大学)及其饱和行为使用以及粒子亮度(B-UC)。在光谱测量两种激发波长在水和脂质幻影和B-UC-based计算的信号大小不同的渗透深度,条件下激发在808纳米是有利的进一步的推导和参数吗优化triple-doped UCNPs。

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