首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Nanoporous gold peel-and-stick biosensors created with etching inkjet maskless lithography for electrochemical pesticide monitoring with microfluidics
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Nanoporous gold peel-and-stick biosensors created with etching inkjet maskless lithography for electrochemical pesticide monitoring with microfluidics

机译:用微流体进行蚀刻喷墨掩模光刻创建的纳米孔金果皮和棒生物传感器,用于微流体监测电化学农药监测

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Nanoporous gold leaf (NPGL) is an attractive material for flexible electrochemical biosensors due its high and tunable surface area, electrical conductivity, biocompatibility/non-reactive nature, and rich surface chemistry. However, NPGL synthesis and patterning protocols are complex, costly and consequently not suited for flexible electronic fabrication. This work develops a new manufacturing technique coined Etching Inkjet Maskless Lithography (E-IML) to synthesize and pattern NPGL and metal leaf materials (thickness similar to 100 nm) for flexible electronics. E-IML utilizes the versatility of an inkjet printer to pattern electrodes for rapid prototyping, even on flexible substrates (polyimide). We demonstrate how NPGL electrodes, with feature and pores sizes down to approximately 25 nm and 5 nm respectively, can be synthesized and patterned from gold/silver leaf material with E-IML and dealloyed (silver removed) via electrochemical etching. Additionally, a pseudo-reference electrode was E-IML patterned from silver leaf and chlorinated with a diluted bleach solution to make a Ag/AgCl electrode for use in 3-electrode electrochemical biosensing with NPGL working and counter electrodes. These 3-electrode electrochemical biosensors were patterned on adhesive polyimide films for use as disposable peel-and-stick tape biosensors or wearable sticker biosensors. In order to demonstrate the utility of the peel-and-stick biosensors, a disposable tape pesticide biosensor and reusable 3D printed flow cell were developed for organophosphate detection in soil samples. Multiple NPGL working electrodes were fabricated on single devices so that that each electrode could be functionalized with distinct concentrations of the enzyme acetylcholinesterase. Paraoxon (a model organophosphate) sensing results demonstrated a low detection limit (0.53 mu M) and high sensitivity (376 nA nM(-1)). The unique multi-electrode enzyme functionalization protocol allowed for a wider paraoxon sensing range (four orders of magnitude: 1 nM-10 mM) than one electrode alone. The flow cell platform biosensor was also tested in real-world samples (soil slurry) and demonstrated a signal recovery of approximately 93.5% and 91.5% for soil slurry samples spiked with 10 nM and 1 mM paraoxon concentration respectively. Hence these thin-film E-IML NPGL patterning and synthesis techniques could be useful for a wide variety of applications including electrochemical sensors, supercapacitors, batteries, fuel cells, energy harvesters, triboelectric nanogenerators, and membranes.
机译:纳米孔金箔(NPGL)是一种柔性电化学生物传感器的吸引物质,其高和可调表面积,导电性,生物相容性/非反应性和丰富的表面化学。然而,NPGL合成和图案化方案是复杂的,昂贵的,并且因此不适合灵活的电子制造。这项工作开发了一种新的制造技术,用于柔性电子器件的蚀刻喷墨掩模光刻(E-IML),以合成和图案NPGL和金属叶材料(厚度类似于100nm)的柔性电子器件。 E-IML利用喷墨打印机的多功能性,即使在柔性基板(聚酰亚胺)上,也能够快速原型的图案电极。我们示出了如何分别用e-iml的金/银叶片材料合成和图案化与大约25nm和5nm的npgl电极,其分别与大约25nm和5nm的尺寸分别合成和图案化。另外,伪参考电极是由银叶图案化的E-IML,用稀释的漂白剂氯化溶液,使Ag / AgCl电极用于3电极电化学生物传感与NPGL加工和反电极。将这些3电极电化学生物传感器在粘合剂聚酰亚胺膜上图案化,用作一次性剥离和粘结胶带生物传感器或可穿戴贴纸生物传感器。为了证明果皮和棒生物传感器的效用,开发了一次性胶带农药生物传感器和可重复使用的3D印刷流动池用于在土壤样品中有机磷酸盐检测。在单个装置上制造多个NPGL工作电极,使得每个电极可以用不同浓度的酶乙酰胆碱酯酶的浓度官能化。判决(模型有机磷酸盐)传感结果证明了低检测限(0.53μm)和高灵敏度(376纳nm(-1))。独特的多电极酶官能化方案允许更广泛的副福音感测范围(四个幅度:1nm-10mm)而不是单独的电极。流动细胞平台生物传感器也在现实世界上的样品(土壤浆料)中进行测试,并证明了分别用10nm和1mm致前氧浓度的土壤浆料样品的约93.5%和91.5%的信号恢复。因此,这些薄膜E-IML NPGL图案化和合成技术可用于各种各样的应用,包括电化学传感器,超级电容器,电池,燃料电池,能量收割机,摩擦纳米能器和膜。

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