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用于高通量合成 Pd@AuPt 核壳纳米颗粒以评估过氧化氢生成性能的离心微流控装置。

Centrifugal microfluidic device for the high-throughput synthesis of Pd@AuPt core-shell nanoparticles to evaluate the performance of hydrogen peroxide generation.

作者信息

Nguyen Hau Van, Kim Ki Yoon, Nam Hyobin, Lee Seung Yong, Yu Taekyung, Seo Tae Seok

机构信息

Department of Chemical Engineering, Kyung Hee University, Yongin, 17104, South Korea.

出版信息

Lab Chip. 2020 Sep 21;20(18):3293-3301. doi: 10.1039/d0lc00461h. Epub 2020 Aug 7.

DOI:10.1039/d0lc00461h
PMID:32766653
Abstract

We propose a novel high-throughput screening platform using a centrifugal microfluidic device for producing combinatorial tri-metallic catalysts. The centrifugal device was designed to perform 60 reactions under different conditions on a single device. As a model to search for an optimal tri-metallic catalyst, we synthesized a variety of Pd@AuPt nanoparticles (NPs), in which Pd nanocubes served as a core, and Au and Pt atoms formed a shell. The centrifugal microfluidic device was etched on the top and bottom sides, in which two zigzag-shaped microchannels were patterned on the top side, and 60 reaction chambers were fabricated on the bottom side. Through the sophisticated zigzag-shaped microchannels, Pt ion and Pd nanocube solutions were injected into the channel in one shot, and the centrifugal force equally and automatically divided the injected solutions into 60 aliquots during the rotation. By controlling the sophisticated channel dimensions and designing the passive valve structure, the Pt ion, Pd nanocube, and Au solutions were loaded into the reaction chamber in sequential order depending on the programmed rotational direction and speed. Therefore, the ratio of Au to Pt to synthesize Pd@AuPt core-shell NPs was changed from 0.028 : 1 to 12 : 1, and accordingly, the resultant 60 types of Pd@AuPt catalysts presented with different ratios of metal atom compositions. Then, we screened the catalytic activity of the Pd@AuPt NPs for generating HO according to the degree of coating of Au and Pt, and the Pd@AuPt catalyst with the Au/Pt ratio at 0.5 turned out to be the most effective.

摘要

我们提出了一种新型的高通量筛选平台,该平台使用离心微流控装置来制备组合三金属催化剂。该离心装置设计为在单个装置上进行60种不同条件下的反应。作为寻找最佳三金属催化剂的模型,我们合成了多种Pd@AuPt纳米颗粒(NPs),其中Pd纳米立方体作为核心,Au和Pt原子形成壳层。离心微流控装置在顶部和底部进行蚀刻,顶部蚀刻出两条锯齿形微通道,底部制造了60个反应腔。通过复杂的锯齿形微通道,将Pt离子和Pd纳米立方体溶液一次性注入通道,在旋转过程中离心力将注入的溶液均匀自动地分成60份。通过控制复杂的通道尺寸并设计被动阀结构,根据编程的旋转方向和速度,Pt离子、Pd纳米立方体和Au溶液按顺序加载到反应腔中。因此,合成Pd@AuPt核壳纳米颗粒时Au与Pt的比例从0.028∶1变化到12∶1,相应地,所得的60种Pd@AuPt催化剂呈现出不同比例的金属原子组成。然后,我们根据Au和Pt的包覆程度筛选了Pd@AuPt纳米颗粒生成HO的催化活性,结果发现Au/Pt比例为0.5的Pd@AuPt催化剂最为有效。

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