Ortiz-Rivero Elisa, Prorok Katarzyna, Marin Riccardo, Bednarkiewicz Artur, Jaque Daniel, Haro-González Patricia
Nanomaterials for Bioimaging Group, Departamento de Física de Materiales, Facultad de Ciencias, Universidad Autónoma de Madrid, Madrid, 28049, Spain.
Instituto de Materiales Nicolás Cabrera, Universidad Autónoma de Madrid, Madrid, 28049, Spain.
Small Methods. 2025 Apr;9(4):e2400718. doi: 10.1002/smtd.202400718. Epub 2024 Nov 3.
Upconverting particles (UCPs), renowned for their capability to convert infrared to visible light, serve as invaluable imaging probes. Furthermore, their responsiveness to diverse external stimuli holds promise for leveraging UCPs as remote multiparametric sensors, capable of characterizing medium properties in a single assessment. However, the utility of UCPs in multiparametric sensing is impeded by crosstalk, wherein distinct external stimuli induce identical alterations in UCP luminescence, hindering accurate interpretation, and yielding erroneous outputs. Overcoming crosstalk requires alternative strategies in upconverting luminescence analysis. In this study, it is shown how a single spinning NaYF:Er, Yb upconverting particle enables simultaneous and independent readings of temperature and viscosity. This is achieved by decoupling thermal and rehological measurements-employing the luminescence of thermally-coupled energy levels of Er ions for thermal sensing, while leveraging the polarization of luminescence from non-thermally coupled levels of Er ions to determine viscosity. Through simple proof-of-concept experiments, the study validates the capability of a single spinning UCP to perform unbiased, simultaneous temperature, and viscosity sensing, thereby opening new avenues for advanced sensing in microenvironments.
上转换粒子(UCPs)以其将红外光转换为可见光的能力而闻名,是非常有价值的成像探针。此外,它们对各种外部刺激的响应能力有望将UCPs用作远程多参数传感器,能够在一次评估中表征介质特性。然而,UCPs在多参数传感中的应用受到串扰的阻碍,即不同的外部刺激会在UCP发光中引起相同的变化,从而妨碍准确解读并产生错误输出。克服串扰需要在上转换发光分析中采用替代策略。在本研究中,展示了单个旋转的NaYF:Er、Yb上转换粒子如何实现温度和粘度的同时独立测量。这是通过将热测量和流变测量解耦来实现的——利用Er离子热耦合能级的发光进行热传感,同时利用Er离子非热耦合能级发光的偏振来确定粘度。通过简单的概念验证实验,该研究验证了单个旋转UCP进行无偏、同时温度和粘度传感的能力,从而为微环境中的先进传感开辟了新途径。