CEA, CNRS, INAC-SyMMES, Université Grenoble Alpes, 38000, Grenoble, France.
INP-Bordeaux, ISM, CNRS UMR5255, Université de Bordeaux, 33607, Pessac, France.
Anal Bioanal Chem. 2019 Apr;411(11):2249-2259. doi: 10.1007/s00216-019-01689-2. Epub 2019 Feb 23.
Remote detection by surface plasmon resonance (SPR) is demonstrated through microstructured optical arrays of conical nanotips or micropillars. Both geometries were fabricated by controlled wet chemical etching of bundles comprising several thousands of individual optical fibers. Their surface was coated by a thin gold layer in order to confer SPR properties. The sensitivity and resolution of both shapes were evaluated as a function of global optical index changes in remote detection mode performed by imaging through the etched optical fiber bundle itself. With optimized geometry of micropillar arrays, resolution was increased up to 10 refractive index units. The gold-coated micropillar arrays were functionalized with DNA and were able to monitor remotely the kinetics of DNA hybridization with complementary strands. We demonstrate for the first time highly parallel remote SPR detection of DNA via microstructured optical arrays. The obtained SPR sensitivity combined with the remote intrinsic properties of the optical fiber bundles should find promising applications in biosensing, remote SPR imaging, a lab-on-fiber platform dedicated to biomolecular analysis, and in vivo endoscopic diagnosis. Graphical abstract We present a single fabrication step to structure simultaneously all the individual cores of an optical fiber bundle composed of thousands of fibers. The resulting sensor is optimized for reflection mode (compatible with in vivo applications) and is used to perform for the first time highly parallel remote SPR detection of DNA via several thousands of individual optical fiber SPR sensors paving the way for multiplexed biological detection.
通过锥形纳米尖或微柱的微结构光学阵列实现了表面等离子体共振 (SPR) 的远程检测。这两种几何形状都是通过对包含数千根光纤的光纤束进行受控的湿法化学蚀刻来制造的。为了赋予 SPR 特性,它们的表面涂有一层薄金层。作为通过自身刻蚀光纤束进行远程检测模式下的全局光学指数变化进行成像的功能,评估了这两种形状的灵敏度和分辨率。通过优化微柱阵列的几何形状,分辨率提高了 10 个折射率单位。金涂覆的微柱阵列通过 DNA 进行功能化,并能够远程监测与互补链的 DNA 杂交动力学。我们首次通过微结构光学阵列实现了 DNA 的高并行远程 SPR 检测。所获得的 SPR 灵敏度结合光纤束的远程固有特性,应该在生物传感、远程 SPR 成像、用于生物分子分析的光纤上实验室平台以及体内内窥镜诊断中找到有前途的应用。