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柔性毛细晶体管可牺牲3D打印与液体定向传输研究

史文婉 吴鑫锟 孙晓露 周煜宁 郜晓翔 孙婧 刘小将 顾忠泽

表面技术2025,Vol.54Issue(21):87-100,14.
表面技术2025,Vol.54Issue(21):87-100,14.DOI:10.16490/j.cnki.issn.1001-3660.2025.21.006

柔性毛细晶体管可牺牲3D打印与液体定向传输研究

Sacrificial 3D Printing of Flexible Capillary Transistor for Unidirectional Liquid Transport

史文婉 1吴鑫锟 1孙晓露 1周煜宁 1郜晓翔 1孙婧 2刘小将 1顾忠泽1

作者信息

  • 1. 东南大学 生物科学与医学工程学院,南京 211189
  • 2. 南京医科大学第一附属医院肿瘤科,南京 210029
  • 折叠

摘要

Abstract

To address the challenge of simultaneously achieving efficient unidirectional liquid transport and flexibility on capillary transistors,a method has been proposed in which the sacrificial template-assisted three-dimensional printing(sacrificial 3D printing)is utilized to fabricate asymmetric overhanging microstructures with interconnected channels on the surface of polydimethylsiloxane(PDMS).The method allows for precise control over the direction,height,width,and area of liquid capillary rise while imparting the ability for three-dimensional spatial deformation of the structure.In this work,a photopolymerization-based 3D printer was used to create a negative template with optimized exposure time and printing resolution for the capillary transistors.After PDMS casting,thermal curing,and alkaline solution hydrolysis of the template,flexible PDMS capillary transistors were obtained.The impact of different post-processing cycles(0,1,2,and 3 times)on the PDMS molding effect was evaluated.The morphology of the resulting structures was characterized by a microscope with extended depth of filed,and the dimensions were measured to calculate the dimensional deviations between the designed values and the measured values.A contact angle meter was used to assess the wettability of the structures with various liquids.The flexible capillary transistors with different dimensions were fabricated,and the self-driven capillary rise height in anhydrous ethanol was recorded to determine the optimal structural parameters.Liquid capillary rise and injection tests were performed to evaluate the unidirectional liquid transport behaviors and flexibility of the capillary transistors. The results showed that the sacrificial template was successfully fabricated by 3D printing,with an optimal exposure time of 18 seconds and a minimum design feature size of 120 μm.The sacrificial resin was completely hydrolyzed in an alkaline aqueous solution within 140 minutes.After two post-processing cycles(including isopropyl alcohol cleaning,UV curing,and heating),high-precision flexible capillary transistor structures were successfully fabricated.Experimental results of liquid capillary rise demonstrated that the maximum capillary rise height of anhydrous ethanol on the flexible capillary transistors reached 25.3 mm.Furthermore,O2 plasma treatment significantly enhanced the capillary rise of anhydrous ethanol,reaching a maximum height of 37.0 mm,which was attributed to the change in contact angle.By adjusting the direction and width of the asymmetric overhanging microstructure in the flexible capillary transistors,various functions such as liquid on/off valves,amplifiers,and attenuators were achieved.The fabricated PDMS flexible capillary transistors demonstrated remarkable structural flexibility.They were capable of bending to any angle,twisting,or even knotting,and could return to their original shape without any damage.This flexibility allowed the flexible capillary transistor to perform unidirectional liquid transport even on complex curved surfaces with angles greater than 360°.Additionally,by leveraging the hydrophobic and oleophilic properties of PDMS,the flexible capillary transistors enabled self-driven water-oil separation. This study applies sacrificial 3D printing technology to the fabrication of microfluidic chips,enhancing the processing accuracy of PDMS three-dimensional microstructures.It successfully creates flexible capillary transistors that enable efficient unidirectional liquid transport and 3D deformability.Flexible capillary transistors hold significant potential for applications in microfluidics,liquid distribution,and oil-water separation technologies.This research provides important experimental insights for the design and application of flexible capillary transistors and broadens the potential applications of sacrificial 3D printing technology in the manufacturing of microfluidic devices.

关键词

非对称悬空微结构/毛细晶体管/液体定向传输/PDMS/可牺牲3D打印/油水分离

Key words

asymmetric overhanging microstructure/capillary transistor/unidirectional liquid transport/PDMS/sacrificial 3D printing/oil-water separation

分类

数理科学

引用本文复制引用

史文婉,吴鑫锟,孙晓露,周煜宁,郜晓翔,孙婧,刘小将,顾忠泽..柔性毛细晶体管可牺牲3D打印与液体定向传输研究[J].表面技术,2025,54(21):87-100,14.

基金项目

国家自然科学基金(52033002,82227808) (52033002,82227808)

江苏省自然科学基金(BK20241268) (BK20241268)

东南大学和江苏省人民医院开放研究基金(2024-M02) (2024-M02)

江苏省青年科技人才支持项目(JSTJ-2024-096) (JSTJ-2024-096)

东南大学生创业研究基金(RF028623292) (RF028623292)

东南高校青年跨学科研究计划(2024FGC1003)National Natural Science Foundation of China(52033002,82227808) (2024FGC1003)

Natural Science Foundation of Jiangsu Province(BK20241268) (BK20241268)

Open Research Fund of Southeast University and Jiangsu Province Hospital(2024-M02) (2024-M02)

Jiangsu Province Youth Science and Technology Talent Support Project(JSTJ-2024-096) (JSTJ-2024-096)

Start-up Research Fund of Southeast University(RF028623292) (RF028623292)

Southeast University Interdisciplinary Research Program for Young Scholars(2024FGC1003) (2024FGC1003)

表面技术

OA北大核心

1001-3660

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