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具有增强荧光性能的介孔和空心SiO@Eu(TTA)phen的合成

Synthesis of Mesoporous and Hollow SiO@ Eu(TTA)phen with Enhanced Fluorescence Properties.

作者信息

Wang Zhiheng, Hu Xiaoli, Yang Yinqi, Wang Wei, Wang Yao, Gong Xuezhong, Geng Caiyun, Tang Jianguo

机构信息

Institute of Hybrid Materials, National Center of International Research for Hybrid Materials Technology, National Base of International Science & Technology Cooperation, College of Materials Science and Engineering, Qingdao University, Qingdao 266071, China.

出版信息

Materials (Basel). 2023 Jun 21;16(13):4501. doi: 10.3390/ma16134501.

Abstract

Lanthanide ions are extensively utilized in optoelectronic materials, owing to their narrow emission bandwidth, prolonged lifetime, and elevated fluorescence quantum yield. Inorganic non-metallic materials commonly serve as host matrices for lanthanide complexes, posing noteworthy challenges regarding loading quantity and fluorescence performance stability post-loading. In this investigation, an enhanced Stöber method was employed to synthesize mesoporous hollow silica, and diverse forms of SiO@Eu(TTA)phen (S@Eu) were successfully prepared. Transmission electron microscopy (TEM), energy-dispersive X-ray spectroscopy (EDS), Fourier-transform infrared (FTIR) spectroscopy, and X-ray photoelectron spectroscopy (XPS) outcomes revealed the effective binding of silica with Eu(TTA)phen through both physical adsorption and chemical bonding. This includes the formation of Si-O-C bonds between silica and the ligand, as well as Si-O-Eu bonds between silica and europium ions. Fluorescence tests demonstrated that the mesoporous SiO@Eu(TTA)phen(MS@Eu) composite exhibited the highest fluorescence intensity among the three structured silica composites, with a notable enhancement of 46.60% compared to the normal SiO@Eu(TTA)phen composite. The Brunauer-Emmett-Teller (BET) analysis indicated that the specific surface area plays a crucial role in influencing the fluorescence intensity of SiO@Eu(TTA)phen, whereby the prepared mesoporous hollow silica further elevated the fluorescence intensity by 61.49%. Moreover, SiO@Eu(TTA)phen demonstrated 11.11% greater cyclic stability, heightened thermal stability, and enhanced alkaline resistance relative to SiO@Eu(TTA)phen.

摘要

镧系离子因其发射带宽窄、寿命长和荧光量子产率高而被广泛应用于光电子材料中。无机非金属材料通常作为镧系配合物的主体基质,在负载量和负载后荧光性能稳定性方面存在显著挑战。在本研究中,采用改进的Stöber法合成了介孔中空二氧化硅,并成功制备了多种形式的SiO@Eu(TTA)phen(S@Eu)。透射电子显微镜(TEM)、能量色散X射线光谱(EDS)、傅里叶变换红外(FTIR)光谱和X射线光电子能谱(XPS)结果表明,二氧化硅与Eu(TTA)phen通过物理吸附和化学键合实现了有效结合。这包括二氧化硅与配体之间形成Si-O-C键,以及二氧化硅与铕离子之间形成Si-O-Eu键。荧光测试表明,介孔SiO@Eu(TTA)phen(MS@Eu)复合材料在三种结构的二氧化硅复合材料中荧光强度最高,与普通SiO@Eu(TTA)phen复合材料相比显著增强了46.60%。布鲁诺尔-埃米特-泰勒(BET)分析表明,比表面积在影响SiO@Eu(TTA)phen的荧光强度方面起着关键作用,由此制备的介孔中空二氧化硅使荧光强度进一步提高了61.49%。此外,SiO@Eu(TTA)phen相对于SiO@Eu(TTA)phen表现出11.11%更高的循环稳定性、更高的热稳定性和更强的耐碱性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/efa2/10342752/bd8b7ceedf7f/materials-16-04501-g001.jpg

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