Stable and Controllable Magnetic Functionalization of Polymer Microspheres via Covalent Layer-by-Layer Assembly

表面改性 微球 图层(电子) 共价键 聚合物 逐层 纳米技术 材料科学 化学工程 高分子化学 化学 复合材料 有机化学 工程类
作者
Wenqian Fan,Zhimin Zhao,Xinyu Chen,Yingrui Nie,Zhifei Wang,Yong Jiang
出处
期刊:Langmuir [American Chemical Society]
卷期号:41 (22): 14300-14310 被引量:2
标识
DOI:10.1021/acs.langmuir.5c01372
摘要

Magnetic polymer microspheres have attracted significant attention due to their wide applications in bioanalysis. However, achieving stable and controllable magnetic functionalization remains a critical challenge. Here, covalent layer-by-layer (LBL) self-assembly technique was first applied to the magnetic functionalization of polymer microspheres, preparing P(GMA- co - t BMA)@(Fe 3 O 4 @APTES/Fe 3 O 4 @GPTMS) n (PG@(FeA/FeG) n ) microspheres with controllable magnetic content, suppressed detachment of magnetic particles, and surface functionalization. The alternating loading of Fe 3 O 4 @APTES nanoparticles and Fe 3 O 4 @GPTMS nanoparticles onto the porous P(GMA- co - t BMA) microsphere templates was achieved through covalent bonds formed between amino groups and epoxy groups. The results indicated that the loading capacity of magnetic particles in a single-layer assembly on the porous microspheres reached its upper limit when the mass ratio ω ( M Fe 3 O 4 @APTES / M P(GMA- co - t BMA) ) was 0.05:1, at which point the saturation magnetization value of PG@(FeA/FeG) 1 microspheres was 3.00 emu/g. PG@(FeA/FeG) n microspheres were prepared under this condition, and their saturation magnetization value were proportionally with the count of layers, reaching 13.90 emu/g at n = 7. Compared to electrostatic self-assembly, the covalent self-assembly strategy reduced magnetic leakage by approximately 83.4%. PGMA was coated onto magnetic PG@(FeA/FeG) 3 microspheres utilizing the amino groups on their surface, and subsequent surface carboxylation was developed. Finally, the carboxylated magnetic microspheres were employed as carriers for chemiluminescence immunoassay to detect creatine kinase-MB (CKMB), a biomarker for acute myocardial infarction (AMI), and exhibited higher chemiluminescence intensity compared to commercially available magnetic beads from JSR Corporation. This method provides a novel approach for achieving stable, controllable, and facile loading of other metals and their compounds, organic compounds, and biomolecules onto polymer substrate.
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