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超声辅助微通道连续流反应合成树枝状介孔二氧化硅纳米颗粒

Synthesis of dendritic mesoporous silica nanoparticles by ultrasonic assisted microchannel continuous flow reaction.

作者信息

Zhang Chunpeng, Wang Xiujun, Zhang Jian, Hou Shengzhen, Tang Qingqing, Duan Ming, Fang Shenwen

机构信息

School of Chemistry and Chemical Engineering, Southwest Petroleum University Chengdu Sichuan China

State Key Laboratory of Offshore Oil and Gas Exploitation Beijing China.

出版信息

RSC Adv. 2025 May 22;15(22):17230-17240. doi: 10.1039/d5ra00745c. eCollection 2025 May 21.

Abstract

Dendritic mesoporous silica nanoparticle (DMSN) possess advantages such as high specific surface area, excellent chemical stability, and good biocompatibility, which make it is a research hotspot in the field of nanomaterials. The microemulsion templating method (MET) is one of the common methods for synthesizing DMSN, but it typically requires a long reaction time. In this paper, we propose an ultrasonic-assisted microchannel continuous flow reaction to shorten the reaction time. The ultrasonic-assisted microchannel continuous flow reaction system consists of an injection system, dispersion chip, ultrasonic-assisted mixing chip, reaction coil, and condensation coil. By optimizing factors including total flow rate, material ratio, reaction temperature, reaction coil inner diameter, reaction coil length, and the concentration of NaOH and HCl in the microemulsion, the optimal synthesis conditions were determined. Under the best conditions, the reaction time for synthesizing DMSN was 33.6 min; compared to the 24 h required for synthesis in the three-neck flask, it had been shortened by 42 times. The findings of this study provide a new method for the preparation of DMSN.

摘要

树枝状介孔二氧化硅纳米颗粒(DMSN)具有高比表面积、优异的化学稳定性和良好的生物相容性等优点,这使其成为纳米材料领域的研究热点。微乳液模板法(MET)是合成DMSN的常用方法之一,但通常需要较长的反应时间。在本文中,我们提出了一种超声辅助微通道连续流动反应来缩短反应时间。超声辅助微通道连续流动反应系统由注射系统分散芯片、超声辅助混合芯片、反应盘管和冷凝盘管组成。通过优化总流速、物料比、反应温度、反应盘管内径、反应盘管长度以及微乳液中NaOH和HCl的浓度等因素,确定了最佳合成条件。在最佳条件下,合成DMSN的反应时间为33.6分钟;与在三颈烧瓶中合成所需的24小时相比,缩短了42倍。本研究结果为DMSN的制备提供了一种新方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/07f5/12096444/d80ecdc03647/d5ra00745c-f1.jpg

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