Kalsoom Umme, Hasan Chowdhury Kamrul, Tedone Laura, Desire Christopher, Li Feng, Breadmore Michael C, Nesterenko Pavel N, Paull Brett
Australian Centre for Research on Separation Science (ACROSS), School of Natural Sciences , University of Tasmania , Private Bag 75 , Hobart , Tasmania 7001 , Australia.
ARC Centre of Excellence for Electromaterials Science (ACES), School of Natural Sciences , University of Tasmania , Sandy Bay, Hobart , Tasmania 7001 , Australia.
Anal Chem. 2018 Oct 16;90(20):12081-12089. doi: 10.1021/acs.analchem.8b02893. Epub 2018 Oct 4.
Multimaterial 3D printing facilitates the rapid production of complex devices with integrated materials of varying properties and functionality. Herein, multimaterial fused deposition modeling (MM-FDM) 3D printing was applied to the fabrication of low-cost passive sampler devices with integrated porous membranes. Using MM-FDM 3D printing, the device body was produced using black polylactic acid, with Poro-Lay Lay-Felt filament used for the printing of the integrated porous membranes (rubber-elastomeric polymer, porous after removal of a water-soluble poly(vinyl alcohol) component). The resulting device consisted of two interlocking circular frames, each containing the integrated membrane, which could be efficiently sealed together without the need for additional O-rings, and prevented loss of enclosed microparticulate sorbent. Scanning electron microscopy (SEM) analysis of the purified composite filament confirmed the porous properties of the material, an average pore size of ∼30 nm. The printed passive samplers with various membrane thicknesses, including 0.5, 1.0, and 1.5 mm, were evaluated for their ability to facilitate the extraction of atrazine as the model solute onto the internal sorbent, under standard conditions. Gas chromatography-mass spectrometry was used to determine the uptake of atrazine by the device from standard water samples and also to evaluate any chemical leaching from the printed materials. The sampler with 0.5 mm thick membrane showed the best performance with 87% depletion and a sampling rate of 0.19 Ld ( n = 3, % RSD = 0.59). The results obtained using these printed sampling devices with integrated membranes were in close agreement to devices fitted with a standard poly(ether sulfone) membrane.
多材料3D打印有助于快速生产具有不同特性和功能的集成材料的复杂设备。在此,多材料熔融沉积建模(MM-FDM)3D打印被应用于制造具有集成多孔膜的低成本被动采样器设备。使用MM-FDM 3D打印,设备主体采用黑色聚乳酸制成,Poro-Lay Lay-Felt细丝用于打印集成多孔膜(橡胶弹性体聚合物,去除水溶性聚乙烯醇成分后呈多孔状)。所得设备由两个互锁的圆形框架组成,每个框架都包含集成膜,无需额外的O形环即可有效地密封在一起,并防止封闭的微粒吸附剂流失。对纯化后的复合细丝进行扫描电子显微镜(SEM)分析,证实了材料的多孔特性,平均孔径约为30nm。在标准条件下,对具有0.5、1.0和1.5mm等不同膜厚度的打印被动采样器促进莠去津作为模型溶质萃取到内部吸附剂上的能力进行了评估。使用气相色谱-质谱法测定设备从标准水样中对莠去津的吸收情况,并评估打印材料的任何化学浸出情况。膜厚度为0.5mm的采样器表现最佳,损耗率为87%,采样率为0.19L/d(n = 3,%RSD = 0.59)。使用这些带有集成膜的打印采样设备获得的结果与配备标准聚醚砜膜的设备结果非常一致。