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用于单粒子追踪孔隙空间映射的荧光探针表征

Fluorescent-Probe Characterization for Pore-Space Mapping with Single-Particle Tracking.

作者信息

González Rafael Mayorga, Maris J J Erik, Wagner Marita, Ganjkhanlou Yadolah, Bomer Johan G, Werny Maximilian J, Rabouw Freddy T, Weckhuysen Bert M, Odijk Mathieu, Meirer Florian

机构信息

Inorganic Chemistry and Catalysis, Debye Institute for Nanomaterials Science and Institute for Sustainable and Circular Chemistry, Utrecht University, Universiteitsweg 99, 3584, CG Utrecht, The Netherlands.

BIOS Lab on a Chip Group, MESA+ Institute for Nanotechnology, University of Twente, 7522, ME Enschede, The Netherlands.

出版信息

Angew Chem Int Ed Engl. 2024 Jan 22;63(4):e202314528. doi: 10.1002/anie.202314528. Epub 2023 Dec 20.

Abstract

Porous solids often contain complex pore networks with pores of various sizes. Tracking individual fluorescent probes as they diffuse through porous materials can be used to characterize pore networks at tens of nanometers resolution. However, understanding the motion behavior of fluorescent probes in confinement is crucial to reliably derive pore network properties. Here, we introduce well-defined lithography-made model pores developed to study probe behavior in confinement. We investigated the influence of probe-host interactions on diffusion and trapping of confined single-emitter quantum-dot probes. Using the pH-responsiveness of the probes, we were able to largely suppress trapping at the pore walls. This enabled us to define experimental conditions for mapping of the accessible pore space of a one-dimensional pore array as well as a real-life polymerization-catalyst-support particle.

摘要

多孔固体通常包含具有各种尺寸孔隙的复杂孔隙网络。追踪单个荧光探针在多孔材料中扩散时的情况,可用于以数十纳米的分辨率表征孔隙网络。然而,了解荧光探针在受限环境中的运动行为对于可靠地推导孔隙网络特性至关重要。在此,我们引入了通过光刻技术制备的定义明确的模型孔隙,用于研究探针在受限环境中的行为。我们研究了探针与主体之间的相互作用对受限单发射体量子点探针扩散和捕获的影响。利用探针的pH响应性,我们能够在很大程度上抑制在孔壁处的捕获。这使我们能够确定用于绘制一维孔阵列以及实际的聚合催化剂载体颗粒可及孔隙空间的实验条件。

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