Calderilla Carlos, Maya Fernando, Cerdà Víctor, Leal Luz O
Laboratory of Environmental Analytical Chemistry-LQA(2), University of the Balearic Islands, Cra.Valldemossa km 7.5, 07122 Palma de Mallorca, Spain; Environment and Energy Department, Advanced Materials Research Center, Miguel de Cervantes 120, 31136 Chihuahua, Mexico.
Laboratory of Environmental Analytical Chemistry-LQA(2), University of the Balearic Islands, Cra.Valldemossa km 7.5, 07122 Palma de Mallorca, Spain.
Talanta. 2017 Dec 1;175:463-469. doi: 10.1016/j.talanta.2017.07.028. Epub 2017 Jul 14.
The development of advanced manufacturing techniques is crucial for the design of novel analytical tools with unprecedented features. Advanced manufacturing, also known as 3D printing, has been explored for the first time to fabricate modular devices with integrated features for disk-based automated solid-phase extraction (SPE). A modular device integrating analyte oxidation, disk-based SPE and analyte complexation has been fabricated using stereolithographic 3D printing. The 3D printed device is directly connected to flow-based analytical instrumentation, replacing typical flow networks based on discrete elements. As proof of concept, the 3D printed device was implemented in a multisyringe flow injection analysis (MSFIA) system, and applied to the fully automated speciation, SPE and spectrophotometric quantification of Fe in water samples. The obtained limit of detection for total Fe determination was 7ng, with a dynamic linear range from 22ng to 2400ng Fe (3mL sample). An intra-day RSD of 4% (n = 12) and an inter-day RSD of 4.3% (n = 5, 3mL sample, different day with a different disk), were obtained. Incorporation of integrated 3D printed devices with automated flow-based techniques showed improved sensitivity (85% increase on the measured peak height for the determination of total Fe) in comparison with analogous flow manifolds built from conventional tubing and connectors. Our work represents a step forward towards the improved reproducibility in the fabrication of manifolds for flow-based automated methods of analysis, which is especially relevant in the implementation of interlaboratory analysis.
先进制造技术的发展对于设计具有前所未有的特性的新型分析工具至关重要。先进制造,也称为3D打印,首次被用于制造具有集成功能的模块化装置,用于基于圆盘的自动化固相萃取(SPE)。使用立体光刻3D打印制造了一种集成分析物氧化、基于圆盘的SPE和分析物络合的模块化装置。该3D打印装置直接连接到基于流动的分析仪器,取代了基于离散元件的典型流动网络。作为概念验证,该3D打印装置被应用于多注射器流动注射分析(MSFIA)系统,并用于水样中Fe的全自动形态分析、SPE和分光光度法定量。测定总Fe的检测限为7ng,动态线性范围为22ng至2400ng Fe(3mL样品)。日内相对标准偏差为4%(n = 12),日间相对标准偏差为4.3%(n = 5,3mL样品,不同日期,使用不同圆盘)。与由传统管材和连接器构建的类似流动歧管相比,将集成的3D打印装置与基于流动的自动化技术相结合显示出更高的灵敏度(测定总Fe时测量峰高增加85%)。我们的工作朝着提高基于流动的自动化分析方法歧管制造的重现性迈出了一步,这在实验室间分析的实施中尤为重要。