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Preparation of a Superhydrophobic and Peroxidase-like Activity Array Chip for H2O2 Sensing by Surface-Enhanced Raman Scattering

机译:表面增强拉曼散射法制备超疏水和过氧化物酶样活性阵列芯片以检测H2O2

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摘要

In this paper, we propose a novel and simple method for preparing a dual-biomimetic functional array possessing both superhydrophobic and peroxidase-like activity that can be used for hydrogen peroxide (H2O2) sensing. The proposed method is an integration innovation that combines the above two properties and surface-enhanced Raman scattering (SERS). We integrated a series of well-ordered arrays of Au points (d = 1 mm) onto a superhydrophobic copper (Cu)/silver (Ag) surface by replicating an arrayed molybdenum template. Instead of using photoresists and the traditional lithography method, we utilized a chemical etching method (a substitution reaction between Cu and HAuCl4) with a Cu/Ag superhydrophobic surface as the barrier layer, which has the benefit of water repellency. The as-prepared Au points were observed to possess peroxidase-like activity, allowing for catalytic oxidation of the chromogenic molecule o-phenylenediamine dihydrochloride (OPD). Oxidation was evidenced by a color change in the presence of H2O2, which allows the array chip to act as an H2O2 sensor. In this study, the water repellency of the superhydrophobic surface was used to fabricate the array chip and increase the local reactant concentration during the catalytic reaction. As a result, the catalytic reaction occurred when only 2 mu L of an aqueous sample (OPD/H2O2) was placed onto the Au point, and the enzymatic product, 2,3-diaminophenazine, showed a SERS signal distinguishable from that of OPD after mixing with 2 mu L of colloidal Au. Using the dual-biomimetic functional array chip, quantitative analysis of H2O2 was performed by observing the change in the SERS spectra, which showed a concentration-dependent behavior for H2O2. This method allows for the detection of H2O2 at concentrations as low as 3 pmol per 2 mu L of sample, which is a considerable advantage in H2O2 analysis. The as-prepared substrate was convenient for H2O2 detection because only a small amount of sample was required in each analysis. Highly sensitive detection was realized using SERS. Therefore, this chip was shown to exhibit significant potential for applications in bioanalysis.
机译:在本文中,我们提出了一种新颖且简单的方法来制备具有超疏水性和过氧化物酶样活性的双重仿生功能阵列,该阵列可用于过氧化氢(H2O2)感测。所提出的方法是整合创新,结合了以上两个特性和表面增强拉曼散射(SERS)。通过复制阵列的钼模板,我们将一系列有序排列的Au点(d = 1 mm)阵列集成到超疏水铜(Cu)/银(Ag)表面上。代替使用光刻胶和传统的光刻方法,我们使用化学刻蚀方法(Cu和HAuCl4之间的取代反应),以Cu / Ag超疏水表面作为阻挡层,从而具有疏水性。观察到所制备的Au点具有类似过氧化物酶的活性,从而允许发色分子邻苯二胺二盐酸盐(OPD)的催化氧化。在H2O2存在下颜色变化证明了氧化,这使得阵列芯片可以充当H2O2传感器。在这项研究中,超疏水表面的疏水性被用于制造阵列芯片并增加催化反应过程中的局部反应物浓度。结果,当仅将2μL的水性样品(OPD / H2O2)放在Au点上时,发生了催化反应,并且酶产物2,3-二氨基吩嗪的SERS信号与OPD可以区分。与2μL胶体金混合。使用双仿生功能阵列芯片,通过观察SERS光谱的变化对H2O2进行定量分析,该变化显示了H2O2的浓度依赖性行为。此方法允许以每2μL样品低至3 pmol的浓度检测H2O2,这在H2O2分析中具有相当大的优势。所制备的底物便于检测H2O2,因为每次分析仅需要少量样品。使用SERS实现了高度灵敏的检测。因此,该芯片显示出在生物分析中的应用潜力。

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