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通过稀土掺杂纳米棒的偏振发光对可调流变学的流体进行切变测量。

Shearmetry of Fluids with Tunable Rheology by Polarized Luminescence of Rare Earth-Doped Nanorods.

机构信息

Laboratoire de Physique de la Matière Condensée, Ecole Polytechnique, CNRS, IP Paris, 91128 Palaiseau, France.

L'Institut Mondor de Recherche Biomédicale, Université Paris Est Créteil, INSERM U955, CNRS, 94010 Créteil, France.

出版信息

ACS Nano. 2024 Nov 5;18(44):30650-30657. doi: 10.1021/acsnano.4c09493. Epub 2024 Oct 15.

Abstract

Shear stress plays a critical role in regulating physiological processes within microcirculatory systems. While particle imaging velocimetry is a standard technique for quantifying shear flow, uncertainty near boundaries and low resolution remain severe restrictions. Additionally, shear stress determination is particularly challenging in biofluids due to their significant non-Newtonian behaviors. The present study develops a shearmetry technique in physiological settings using a biomimetic fluid containing rare earth-doped luminescent nanorods acting in two roles. First, they are used as colloidal additives adjusting rheological properties in physiological media. Their anisotropic morphology and interparticle interaction synergistically induce a non-Newtonian shear-thinning effect emulating real biofluids. Second, they can probe shear stress due to the shear-induced alignment. The polarized luminescence of the nanorods allows for quantifying their orientational order parameter and thus correlated shear stress. Using scanning confocal microscopy, we demonstrate the tomographic mapping of the shear stress distribution in microfluidics. High shear stress is evident near the constriction and the cellular periphery, in which non-Newtonian effects can have a significant impact. This emerging shearmetry technique is promising for implementation in physiological and rheological environments of biofluids.

摘要

切应力在调节微循环系统的生理过程中起着至关重要的作用。虽然粒子成像测速法是量化切变流的标准技术,但边界附近的不确定性和低分辨率仍然是严重的限制。此外,由于生物流体具有显著的非牛顿行为,因此确定切应力特别具有挑战性。本研究在生理环境中开发了一种切流计技术,使用含有稀土掺杂发光纳米棒的仿生流体来实现两个功能。首先,它们被用作胶体添加剂,在生理介质中调节流变性质。它们的各向异性形态和颗粒间相互作用协同诱导出一种模仿真实生物流体的非牛顿剪切稀化效应。其次,由于剪切诱导的对齐,它们可以探测切应力。纳米棒的偏振发光允许定量测量它们的取向有序参数,从而相关联的剪切应力。我们使用扫描共聚焦显微镜,演示了微流控中剪切应力分布的断层扫描映射。在收缩部位和细胞周围可以明显看到高剪切应力,其中非牛顿效应可能产生重大影响。这种新兴的切流计技术有望在生物流体的生理和流变环境中得到应用。

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