School of Materials Science and Engineering, Institute for Composites Science Innovation, Zhejiang University, Hangzhou, Zhejiang310027, China.
Core Facilities, Zhejiang University School of Medicine, Hangzhou, Zhejiang310003, China.
ACS Appl Mater Interfaces. 2023 Feb 15;15(6):8286-8297. doi: 10.1021/acsami.2c18314. Epub 2023 Jan 31.
Microparticles composed of bicontinuous and ordered macropores are important in many applications. However, rational integration of ordered macropores into a single crystalline microparticle remains a challenge. Here, we report a method to prepare three-dimensionally ordered macroporous (3DOM) AgONO micropyramids via selectively cementing the colloidal crystal templates via an electrochemical method and their shape-preserving transformation into 3DOM Ag micropryamids formed by Ag nanoparticles via a chemical reduction process. The interconnected macropores facilitated the transportation and enrichment of the analyte molecules into the 3DOM Ag micropyramids. The dense Ag nanoparticles on the skeletons of the 3DOM Ag micropyramids provided strong electromagnetic fields. Taken together, a 3DOM Ag micropyramid as a kind of single-particle surface-enhanced Raman scattering (SERS) sensing substrate demonstrated high SERS sensitivity and outstanding SERS signal reproducibility. We explored the application of 3DOM Ag micropyramids in SERS detection of biomolecules (e.g., adenosine, adenine, hemoglobin bovine, and lysozyme) and proved their potentials in distinguishing exosomes from tumor and non-tumor cells. The method can be extended to prepared 3DOM structures of other materials with promising applications in sensing, separation, and catalytic fields.
由双连续和有序大孔组成的微粒在许多应用中都很重要。然而,将有序大孔合理地整合到单个单晶微粒中仍然是一个挑战。在这里,我们报告了一种通过电化学方法选择性地胶结胶体晶体模板来制备三维有序大孔(3DOM)AgONO 微金字塔的方法,以及通过化学还原过程将其转化为由 Ag 纳米粒子形成的具有形状保持的 3DOM Ag 微金字塔的方法。互连的大孔促进了分析物分子进入 3DOM Ag 微金字塔的传输和富集。3DOM Ag 微金字塔骨架上密集的 Ag 纳米粒子提供了强电磁场。综上所述,作为一种单颗粒表面增强拉曼散射(SERS)传感基底的 3DOM Ag 微金字塔表现出了高的 SERS 灵敏度和出色的 SERS 信号重现性。我们探索了 3DOM Ag 微金字塔在生物分子(如腺苷、腺嘌呤、牛血红蛋白和溶菌酶)的 SERS 检测中的应用,并证明了它们在区分肿瘤和非肿瘤细胞来源的外泌体方面的潜力。该方法可以扩展到其他具有传感、分离和催化领域应用前景的 3DOM 结构材料的制备。