Szymborski Tomasz, Witkowska Evelin, Niciński Krzysztof, Majka Zuzanna, Krehlik Tomasz, Deskur Tomiła, Winkler Katarzyna, Kamińska Agnieszka
Institute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, Warsaw 01-224, Poland.
Soft Materials Laboratory, Institute of Materials, Ecole Polytechnique Fédérale de Lausanne, 1015 Lausanne, Switzerland.
Nanomaterials (Basel). 2018 Aug 26;8(9):663. doi: 10.3390/nano8090663.
In this paper, we present novel type of Surface-enhanced Raman spectroscopy (SERS) platform, based on stainless steel wire mesh (SSWM) covered with thin silver layer. The stainless steel wire mesh, typically used in chemical engineering industry, is a cheap and versatile substrate for SERS platforms. SSWM consists of multiple steel wires with diameter of tens of micrometers, which gives periodical structure and high stiffness. Moreover, stainless steel provides great resistance towards organic and inorganic solvents and provides excellent heat dissipation. It is worth mentioning that continuous irradiation of the laser beam over the SERS substrate can be a source of significant increase in the local temperature of metallic nanostructures, which can lead to thermal degradation or fragmentation of the adsorbed analyte. Decomposition or fragmentation of the analysed sample usually causea a significant decrease in the intensity of recorded SERS bands, which either leads to false SERS responses or enables the analysis of spectral data. To our knowledge, we have developed for the first time the thermally resistant SERS platform. This type of SERS substrate, termed Ag/SSWM, exhibit high sensitivity (Enhancement Factor (EF) = 10⁶) and reproducibility (Relative Standard Deviation (RSD) of 6.4%) towards detection of -mercaptobenzoic acid (MBA). Besides, Ag/SSWM allows the specific detection and differentiation between Gram-positive and Gram-negative bacterial species: and in label-free and reproducible manner. The unique properties of designed substrate overcome the limitations associated with photo- and thermal degradation of sensitive bacterial samples. Thus, a distinctive SERS analysis of all kinds of chemical and biological samples at high sensitivity and selectivity can be performed on the developed SERS-active substrate.
在本文中,我们展示了一种新型的表面增强拉曼光谱(SERS)平台,该平台基于覆盖有薄银层的不锈钢丝网(SSWM)。不锈钢丝网通常用于化学工程行业,是一种用于SERS平台的廉价且通用的基底。SSWM由多根直径为几十微米的钢丝组成,这赋予了其周期性结构和高刚度。此外,不锈钢对有机和无机溶剂具有很强的耐受性,并具有出色的散热性能。值得一提的是,激光束在SERS基底上的持续照射可能会导致金属纳米结构的局部温度显著升高,这可能会导致吸附的分析物发生热降解或碎片化。被分析样品的分解或碎片化通常会导致记录的SERS谱带强度显著降低,这要么会导致错误的SERS响应,要么会影响光谱数据的分析。据我们所知,我们首次开发了耐热SERS平台。这种类型的SERS基底,称为Ag/SSWM,在检测对巯基苯甲酸(MBA)方面表现出高灵敏度(增强因子(EF)=10⁶)和重现性(相对标准偏差(RSD)为6.4%)。此外,Ag/SSWM能够以无标记且可重现的方式对革兰氏阳性和革兰氏阴性细菌进行特异性检测和区分。所设计基底的独特性能克服了与敏感细菌样品的光降解和热降解相关的局限性。因此,可以在开发的SERS活性基底上对各种化学和生物样品进行高灵敏度和高选择性的独特SERS分析。