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首页> 外文期刊>ACS applied materials & interfaces >Microchemical Plant in a Liquid Droplet: Plasmonic Liquid Marble for Sequential Reactions and Attomole Detection of Toxin at Microliter Scale
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Microchemical Plant in a Liquid Droplet: Plasmonic Liquid Marble for Sequential Reactions and Attomole Detection of Toxin at Microliter Scale

机译:液滴中的微型化学植物:用于序列反应和微升尺度毒素的血管型液体大理石

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摘要

Miniaturizing the continuous multistep operations of a factory into a microchemical plant offers a safe and cost-effective approach to promote high-throughput screening in drug development and enforcement of industrial/environmental safety. While particle-assembled microdroplets in the form of liquid marble are ideal as microchemical plant, these platforms are mainly restricted to single-step reactions and limited to ex situ reaction monitoring. Herein, we utilize plasmonic liquid marble (PLM), formed by encapsulating liquid droplet with Ag nanocubes, to address these issues and demonstrate it as an ideal microchemical plant to conduct reaction and-detection sequences on-demand in a nondisruptive manner. Utilizing a two-step azo-dye formation as our model reaction, our microchemical plant allows rapid and efficient diazotization of nitroaniline to form diazonium nitrobenzene, followed by the azo coupling of this intermediate with target aromatic compound to yield azo-dye. These molecular events are tracked in situ via SERS measurement through the plasmonic shell and further verified with in silico investigation. Furthermore, we apply our microchemical plant for ultrasensitive SERS detection and quantification of bisphenol A (BPA) with detection limit down to 10 amol, which is 50 000-fold lower than the BPA safety limit. Together with the protections offered by plasmonic shell against external environments, these collective advantages empower PLM as a multifunctional microchemical plant to facilitate small volume testing and optimization of processes relevant in industrial and research contexts.
机译:小型化工厂进入微型化工厂的连续多步运作提供了一种安全且具有成本效益的方法,可促进药物开发和工业/环境安全的执行高通量筛选。虽然液体大理石形式的粒子组装的微型电池是理想的,但是这些平台主要限于单步反应,并限于EX原位反应监测。在此,我们利用通过用Ag纳米粒细胞包封液滴形成的等离子体液体大理石(PLM),以解决这些问题,并将其作为理想的微生学植物证明,以以一种非歧解的方式进行反应和检测序列的反应和检测序列。利用两步偶氮染料形成作为我们的模型反应,我们的微型化学植物允许硝基苯胺的快速有效地重氮化形成硝基苯,然后用靶芳族化合物与该中间体的偶氮偶联,得到氮杂染料。这些分子事件通过等离子体壳通过SERS测量原位跟踪,并进一步在硅调查中验证。此外,我们将微化学植物应用于超敏感SERS检测和定量双酚A(BPA),检测限为10 AMOL,比BPA安全极限低50 000倍。这些集体优势使PLM作为多功能微型化学厂的集体优势,以促进工业和研究中相关工艺的小型体积测试和优化的多功能微型化学厂。

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