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通过醇盐前驱体超快合成锆-卟啉骨架纳米晶体。

Ultrafast synthesis of zirconium-porphyrin framework nanocrystals from alkoxide precursors.

作者信息

Ceballos Manuel, Zampini Giulia, Semyonov Oleg, Funes-Hernando Samuel, Vila-Fungueiriño José Manuel, Martínez-Giménez Sonia, Tatay Sergio, Martí-Gastaldo Carlos, Devic Thomas, Pelaz Beatriz, Del Pino Pablo

机构信息

Centro Singular de Investigación en Química Biolóxica e Materiais Moleculares (CiQUS), Departamento de Física de Partículas, Universidade de Santiago de Compostela, 15782 Santiago de Compostela, Spain.

Centro Singular de Investigación en Química Biolóxica e Materiais Moleculares (CiQUS), Universidade de Santiago de Compostela, 15782 Santiago de Compostela, Spain.

出版信息

Cell Rep Phys Sci. 2024 Dec 18;5(12):102318. doi: 10.1016/j.xcrp.2024.102318.

Abstract

Porphyrinic metal-organic frameworks (MOFs) offer high surface areas and tunable catalytic and optoelectronic properties, making them versatile candidates for applications in phototherapy, drug delivery, photocatalysis, electronics, and energy storage. However, a key challenge for industrial integration is the rapid, cost-effective production of suitable sizes. This study introduces Zr(IV) alkoxides as metal precursors, achieving ultrafast (∼minutes) and high-yield (>90%) synthesis of three well-known Zr-based porphyrinic MOF nanocrystals: MOF-525, PCN-224, and PCN-222, each with distinct topologies. By adjusting linker-to-metal and modulator-to-metal ratios, we attain precise control over single-phase formation. Demonstrating alkoxides' potential, we synthesized nanosized PCN-224 at room temperature within seconds using a continuous multifluidic method. This advancement greatly simplifies porphyrinic MOF production, enabling broader industrial and scientific applications.

摘要

卟啉金属有机框架材料(MOFs)具有高比表面积以及可调节的催化和光电性能,这使其成为光疗、药物递送、光催化、电子学和能量存储等应用的通用候选材料。然而,工业集成面临的一个关键挑战是如何快速、经济高效地生产出合适尺寸的产品。本研究引入锆(IV)醇盐作为金属前驱体,实现了三种著名的基于锆的卟啉MOF纳米晶体(MOF-525、PCN-224和PCN-222,每种都具有独特的拓扑结构)的超快(约数分钟)和高产率(>90%)合成。通过调整连接体与金属以及调节剂与金属的比例,我们实现了对单相形成的精确控制。为证明醇盐的潜力,我们使用连续多流体方法在室温下数秒内合成了纳米尺寸的PCN-224。这一进展极大地简化了卟啉MOF的生产,使其能够在更广泛的工业和科学领域得到应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2896/11659387/736c0572bc26/fx1.jpg

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