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3D 打印技术在将多孔材料集成入微流体设备中的应用:综述。

3D printing for the integration of porous materials into miniaturised fluidic devices: A review.

机构信息

Deakin University, Centre for Rural and Regional Futures, Locked Bag 20000, Geelong, VIC 3320, Australia; Deakin University, Institute for Frontier Materials, Locked Bag 20000, Geelong, VIC 3320, Australia.

Deakin University, Centre for Rural and Regional Futures, Locked Bag 20000, Geelong, VIC 3320, Australia.

出版信息

Anal Chim Acta. 2021 Nov 15;1185:338796. doi: 10.1016/j.aca.2021.338796. Epub 2021 Jul 14.

Abstract

Porous materials facilitate the efficient separation of chemicals and particulate matter by providing selectivity through structural and surface properties and are attractive as sorbent owing to their large surface area. This broad applicability of porous materials makes the integration of porous materials and microfluidic devices important in the development of more efficient, advanced separation platforms. Additive manufacturing approaches are fundamentally different to traditional manufacturing methods, providing unique opportunities in the fabrication of fluidic devices. The complementary 3D printing (3DP) methods are each accompanied by unique opportunities and limitations in terms of minimum channel size, scalability, functional integration and automation. This review focuses on the developments in the fabrication of 3DP miniaturised fluidic devices with integrated porous materials, focusing polymer-based methods including fused filament fabrication (FFF), inkjet 3D printing and digital light projection (DLP). The 3DP methods are compared based on resolution, scope for multimaterial printing and scalability for manufacturing. As opportunities for printing pores are limited by resolution, the focus is on approaches to incorporate materials with sub-micron pores to be used as membrane, sorbent or stationary phase in separation science using Post-Print, Print-Pause-Print and In-Print processes. Technical aspects analysing the efficiency of the fabrication process towards scalable manufacturing are combined with application aspects evaluating the separation and/or extraction performance. The review is concluded with an overview on achievements and opportunities for manufacturable 3D printed membrane/sorbent integrated fluidic devices.

摘要

多孔材料通过结构和表面特性提供选择性,从而促进化学品和颗粒物的有效分离,并且由于其具有较大的表面积,因此作为吸附剂具有吸引力。多孔材料的这种广泛适用性使得多孔材料与微流控器件的集成在开发更高效、先进的分离平台方面变得非常重要。增材制造方法与传统制造方法有根本的不同,在制造流控器件方面提供了独特的机会。互补的 3D 打印 (3DP) 方法在最小通道尺寸、可扩展性、功能集成和自动化方面都具有独特的机会和限制。本综述重点介绍了使用增材制造方法制造集成多孔材料的 3DP 微型化流控器件的最新进展,重点介绍了聚合物基方法,包括熔融沉积成型 (FFF)、喷墨 3D 打印和数字光投影 (DLP)。根据分辨率、多材料打印的范围和制造的可扩展性,对 3DP 方法进行了比较。由于打印孔的机会受到分辨率的限制,因此重点关注使用后打印、打印暂停打印和打印内过程将具有亚微米孔的材料纳入分离科学中的膜、吸附剂或固定相的方法。结合分析可扩展制造的制造工艺效率的技术方面和评估分离和/或提取性能的应用方面。最后概述了可制造的 3D 打印膜/吸附剂集成流控器件的成就和机会。

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