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A large-scale superhydrophobic surface-enhanced Raman scattering (SERS) platform fabricated via capillary force lithography and assembly of Ag nanocubes for ultratrace molecular sensing

机译:大规模超疏水表面增强拉曼散射(SERS)平台,通过毛细管力光刻和Ag纳米立方体的组装制造,用于超痕量分子传感

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摘要

An analytical platform with an ultratrace detection limit in the atto-molar (aM) concentration range is vital for forensic, industrial and environmental sectors that handle scarce/highly toxic samples. Superhydrophobic surface-enhanced Raman scattering (SERS) platforms serve as ideal platforms to enhance detection sensitivity by reducing the random spreading of aqueous solution. However, the fabrication of superhydrophobic SERS platforms is generally limited due to the use of sophisticated and expensive protocols and/or suffers structural and signal inconsistency. Herein, we demonstrate a high-throughput fabrication of a stable and uniform superhydrophobic SERS platform for ultratrace molecular sensing. Large-area box-like micropatterns of the polymeric surface are first fabricated using capillary force lithography (CFL). Subsequently, plasmonic properties are incorporated into the patterned surfaces by decorating with Ag nanocubes using the Langmuir-Schaefer technique. To create a stable superhydrophobic SERS platform, an additional 25 nm Ag film is coated over the Ag nanocube-decorated patterned template followed by chemical functionalization with perfluorodecanethiol. Our resulting superhydrophobic SERS platform demonstrates excellent water-repellency with a static contact angle of 165° ± 9° and a consequent analyte concentration factor of 59-fold, as compared to its hydrophilic counterpart. By combining the analyte concentration effect of superhydrophobic surfaces with the intense electromagnetic "hot spots" of Ag nanocubes, our superhydrophobic SERS platform achieves an ultra-low detection limit of 10~(-17) M (10 aM) for rhodamine 6G using just 4 μL of analyte solutions, corresponding to an analytical SERS enhancement factor of 10~(13). Our fabrication protocol demonstrates a simple, cost- and time-effective approach for the large-scale fabrication of a superhydrophobic SERS platform for ultratrace molecular detection.
机译:具有在痕量(aM)浓度范围内超痕量检测极限的分析平台对于处理稀有/剧毒样品的法医,工业和环境部门至关重要。超疏水表面增强拉曼散射(SERS)平台是理想的平台,可通过减少水溶液的随机扩散来增强检测灵敏度。然而,由于使用复杂且昂贵的协议,超疏水性SERS平台的制造通常受到限制和/或遭受结构和信号的不一致。在这里,我们演示了用于超痕量分子传感的稳定且均匀的超疏水SERS平台的高通量制造。首先使用毛细作用力光刻(CFL)制作聚合物表面的大面积盒状微图案。随后,通过使用Langmuir-Schaefer技术用Ag纳米立方体进行装饰,将等离激元特性纳入图案化表面。为了创建一个稳定的超疏水SERS平台,将另外的25 nm Ag膜涂覆在装饰有Ag纳米立方体的图案化模板上,然后用全氟癸烷硫醇进行化学官能化。我们得到的超疏水SERS平台具有优异的疏水性,静态接触角为165°±9°,因此其分析物的浓缩系数为亲水性的59倍。通过将超疏水表面的分析物浓度效应与Ag纳米立方体的强电磁“热点”结合起来,我们的超疏水SERS平台仅使用4种罗丹明6G就可实现10〜(-17)M(10 aM)的超低检测限。被分析物溶液的微升,相当于SERS分析增强因子10〜(13)。我们的制备方案展示了一种大规模,超疏水性SERS平台的超痕量分子检测的简单,经济高效的方法。

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