化学
纳米棒
等离子体子
磁场
极化(电化学)
光电子学
发光
纳米技术
纳米尺度
小泡
可控性
感应耦合
联轴节(管道)
激发
欧姆接触
旋转磁场
表面等离子体子
电子
电化学发光
近场和远场
双偏振干涉法
电场
磁性纳米粒子
脂质双层
电极
电磁场
生物传感器
生物磁学
纳米颗粒
作者
Zihui Liang,Peilin Wang,Zhenrun Li,Wei Li,Qiang Ma
标识
DOI:10.1021/acs.analchem.5c05071
摘要
Metasurface was a 2D array of subwavelength artificial structures capable of regulating nanoscale optical fields. Although the metal-based metasurface exhibited notable localized field enhancement effects, its static optical responses and ohmic losses limited further development. Magnetic field tuning offered a noninvasive means to dynamically reconfigure the optical functionalities of metasurface. Electrochemiluminescence (ECL), known for its spatiotemporal controllability and low background, can be regulated by the metasurface, which allows for highly spatially selective ECL enhancement with excellent system stability. In this work, we developed a dynamically responsive metasurface system by combining a rotating magnetic field with a Au nanorods (Au NRs)-based metasurface. To provide a stable and efficient light source for the metasurface, zinc-based metal-organic frameworks incorporating polyoxometalates (POM@Zn-MOF) were employed as novel ECL emitters. The multielectron-transfer property of POM optimized interfacial electron transport pathways, thereby enhancing the ECL activity of the MOF. The metasurface exhibited dual surface plasmon modes and strong local electromagnetic fields. Importantly, the electromotive force induced by the rotating magnetic field in the Au NR dynamically tuned the near-field enhancement effect and polarization response properties of the metasurface. As a result, both the ECL intensity and emission polarization states were effectively regulated, leading to improved analytical sensitivity and spatial resolution. Finally, an ECL sensing platform was established using the rotating magnetic field-tuned metasurface system together with a dual membrane protein labeling strategy for the sensitive and specific detection of gastric cancer-derived extracellular vesicles (EVs).
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