Broccoli Alessia, Vollertsen Anke R, Roels Pauline, van Vugt Aaike, van den Berg Albert, Odijk Mathieu
BIOS Lab on a Chip Group, MESA+ Institute for Nanotechnology, Max Planck Center for Complex Fluid Dynamics, University of Twente, 7500 AE Enschede, The Netherlands.
Department of Applied Stem Cell Technologies, TechMed Centre, University of Twente, 7500 AE Enschede, The Netherlands.
Micromachines (Basel). 2023 Feb 15;14(2):453. doi: 10.3390/mi14020453.
The local integration of metal nanoparticle films on 3D-structured polydimethylsiloxane (PDMS)-based microfluidic devices is of high importance for applications including electronics, electrochemistry, electrocatalysis, and localized Raman sensing. Conventional processes to locally deposit and pattern metal nanoparticles require multiple steps and shadow masks, or access to cleanroom facilities, and therefore, are relatively imprecise, or time and cost-ineffective. As an alternative, we present an aerosol-based direct-write method, in which patterns of nanoparticles generated via spark ablation are locally printed with sub-mm size and precision inside of microfluidic structures without the use of lithography or other masking methods. As proof of principle, films of Pt or Ag nanoparticles were printed in the chambers of a multiplexed microfluidic device and successfully used for two different applications: Screening electrochemical activity in a high-throughput fashion, and localized sensing of chemicals via surface-enhanced Raman spectroscopy (SERS). The versatility of the approach will enable the generation of functional microfluidic devices for applications that include sensing, high-throughput screening platforms, and microreactors using catalytically driven chemical conversions.
在基于三维结构聚二甲基硅氧烷(PDMS)的微流控装置上进行金属纳米颗粒薄膜的局部集成,对于电子学、电化学、电催化和局部拉曼传感等应用具有重要意义。传统的局部沉积和图案化金属纳米颗粒的工艺需要多个步骤和荫罩,或者需要使用洁净室设施,因此相对不精确,或者在时间和成本上效率不高。作为一种替代方法,我们提出了一种基于气溶胶的直接写入方法,其中通过火花烧蚀产生的纳米颗粒图案在微流控结构内部以亚毫米尺寸和精度进行局部打印,无需使用光刻或其他掩膜方法。作为原理验证,铂或银纳米颗粒薄膜被打印在多路复用微流控装置的腔室中,并成功用于两种不同的应用:以高通量方式筛选电化学活性,以及通过表面增强拉曼光谱(SERS)对化学物质进行局部传感。该方法的多功能性将能够生成用于传感、高通量筛选平台和使用催化驱动化学转化的微反应器等应用的功能性微流控装置。