Macias Gerard, Sperling Justin R, Peveler William J, Burley Glenn A, Neale Steven L, Clark Alasdair W
School of Engineering, University of Glasgow, Rankine Building, Oakfield Avenue, Glasgow, UK.
Nanoscale. 2019 Aug 15;11(32):15216-15223. doi: 10.1039/c9nr04583j.
Metallic nanostructures are ideal candidates for optical tongue devices thanks to their chemical stability, the sensitivity of their plasmonic resonance to environmental changes, and their ease of chemical-functionalization. Here, we describe a reusable optical tongue comprising multiplexed gold and aluminum nano-arrays: a bimetallic device which produces two distinct resonance peaks for each sensing region. Through specific modification of these plasmonic arrays with orthogonal surface chemistries, we demonstrate that a dual-resonance device allows us to halve sensor sizes and data-acquisition times when compared to single-resonance, monometallic devices. We applied our bimetallic tongue to differentiate off-the-shelf whiskies with >99.7% accuracy by means of linear discriminant analysis (LDA). This advance in device miniaturization, functionalization, and multiplexed readout indicates nanoplasmonic tongues will have future applications in chemical mixture identification in applications where portability, reusability, and measurement speed are key.
由于金属纳米结构具有化学稳定性、其等离子体共振对环境变化的敏感性以及易于进行化学功能化,因此它们是光学舌装置的理想候选材料。在此,我们描述了一种由多重金和铝纳米阵列组成的可重复使用的光学舌:一种双金属装置,每个传感区域会产生两个不同的共振峰。通过用正交表面化学对这些等离子体阵列进行特定修饰,我们证明与单共振单金属装置相比,双共振装置可使传感器尺寸和数据采集时间减半。我们应用双金属舌通过线性判别分析(LDA)以>99.7%的准确率区分市售威士忌。在装置小型化、功能化和多重读出方面的这一进展表明,纳米等离子体舌在便携性、可重复使用性和测量速度至关重要的化学混合物识别应用中将具有未来应用前景。