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用于多级防伪的碳点负载FeO光子颜料

Carbon dot-loaded FeOas photonic pigments for multilevel anti-counterfeiting.

作者信息

Yang Wei, Luo Site, He Yang, Wang Han, Yu Haihu

机构信息

National Engineering Research Center of Fiber Optic Sensing Technology and Networks, Wuhan University of Technology, Wuhan 430070, People's Republic of China.

出版信息

Nanotechnology. 2024 Aug 28;35(46). doi: 10.1088/1361-6528/ad70bd.

Abstract

Amorphous arrays assembled from colloidal microspheres are a way that obtains angle-independent structural colors. In order to obtain additional properties, colloidal microspheres, which are constituent units, can be modified with other materials. Here, we utilized the silane-functionalized carbon quantum dots (SiCDs) by incorporating them into the Stöber reaction to fabricate FeO@SiO/SiCDs nanospheres with a core-shell structure. Amorphous colloidal arrays (ACAs) were constructed on commercial printing paper using FeO@SiO/SiCDs nanoparticles as structural units by a simple permeation assembly. Macroscopically, the prepared ACAs exhibit the magnetic properties of FeO, while under sunlight, they display bright, angle-independent structural colors. Under ultraviolet light, the array shows significant fluorescence. This enables the presentation of multidimensional information under varying magnetic and lighting conditions. By adjusting the thickness of the outer SiO/SiCDs composite layer, the optical properties and magnetism can be controlled easily. Moreover, due to the strong light absorption capability and high refractive index of FeO, the digital patterns constructed with FeO@SiO/SiCDs nanospheres demonstrate excellent multi-level anti-counterfeiting characteristics, even under water exposure. The magnetic properties of FeO@SiO/SiCDs nanospheres, along with their distinct display characteristics under different optical environments, suggest their wide applicability in the fields of multifunctional anti-counterfeiting pigments, bioimaging, and sensing displays.

摘要

由胶体微球组装而成的非晶阵列是一种获得与角度无关的结构颜色的方法。为了获得额外的性能,可以用其他材料对作为组成单元的胶体微球进行修饰。在这里,我们通过将硅烷功能化的碳量子点(SiCDs)纳入施托伯反应来制备具有核壳结构的FeO@SiO/SiCDs纳米球。使用FeO@SiO/SiCDs纳米颗粒作为结构单元,通过简单的渗透组装在商业印刷纸上构建非晶胶体阵列(ACA)。从宏观上看,制备的ACA表现出FeO的磁性,而在阳光下,它们呈现出明亮的、与角度无关的结构颜色。在紫外光下,该阵列显示出显著的荧光。这使得在不同的磁性和光照条件下能够呈现多维信息。通过调整外部SiO/SiCDs复合层的厚度,可以轻松控制光学性能和磁性。此外,由于FeO具有强光吸收能力和高折射率,用FeO@SiO/SiCDs纳米球构建的数字图案即使在暴露于水的情况下也表现出优异的多级防伪特性。FeO@SiO/SiCDs纳米球的磁性以及它们在不同光学环境下独特的显示特性表明它们在多功能防伪颜料、生物成像和传感显示等领域具有广泛的适用性。

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