ZnO纳米材料丝网印刷的实验分析与优化技术

IF 0.4 4区 工程技术 Q4 ENGINEERING, MULTIDISCIPLINARY
V. Bharath, K. R. V. Subramanian
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引用次数: 0

摘要

丝网印刷因其易于设置和多功能印刷功能而脱颖而出,支持各种基材,如玻璃,陶瓷,纺织品,塑料和金属。该技术提供了对关键沉积参数的精确控制,包括纳米油墨厚度、油墨粘度和包装密度,这些都是高质量印刷所必需的。在本研究中,将分散在乙二醇中的ZnO纳米颗粒进行处理,获得了23.8 cP的中等粘度。该实验室规模的装置旨在优化丝网印刷参数,以提高ZnO沉积质量。关键变量,如ZnO纳米油墨的粘度、打印模式和笔划技术,严格评估了它们对打印一致性的影响,并进行了调整以完善工艺。在实验过程中,出现了一些挑战,包括油墨模糊、不受控制的分布、泄漏、不均匀的打印、缺乏清晰度、堵塞和错位。为了应对这些挑战,研究人员实施了具体的调整措施,例如优化断开和断开距离,使用筛网胶带,施加可控压力,并用夹具和真空孔固定筛网。本研究介绍了一种优化的丝网印刷装置,用于在玻璃基板上可靠地沉积ZnO纳米颗粒,支持纳米技术应用的可扩展生产。使用印刷氧化锌电极对传感器进行的电压测量产生高达0.9 mV,适用于低阶流量测量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Experimental Analysis and Optimisation Techniques for Screen Printing of ZnO Nanomaterials

Experimental Analysis and Optimisation Techniques for Screen Printing of ZnO Nanomaterials

Screen printing stands out due to its ease of setup and versatile printing capabilities, supporting various substrates such as glass, ceramics, textiles, plastics, and metals. This technique offers precise control over critical deposition parameters, including nanoink thickness, ink viscosity, and packing density, which are essential for high-quality prints. In this study, ZnO nanoparticles dispersed in ethylene glycol were processed to achieve a moderate viscosity of 23.8 cP. This laboratory-scale setup was designed to optimize screen printing parameters for enhanced ZnO deposition quality. Key variables, such as the viscosity of ZnO nanoink, printing modes, and stroke techniques, were rigorously assessed for their impact on print consistency, with adjustments made to refine the process. During experimentation, challenges emerged, including ink blurring, uncontrolled distribution, leakage, uneven prints, lack of sharpness, clogging, and misalignment. Specific adjustments, such as optimizing snap-off and off-contact distances, using screen mesh tape, applying controlled pressure, and securing the screen with clamps and vacuum holes, were implemented to address these challenges. This study introduces an optimized screen-printing setup for reliable ZnO nanoparticle deposition on glass substrate, supporting scalable production for applications in nanotechnology. Voltage measurements on the sensor made using the printed zinc oxide electrode yielded up to 0.9 mV which is suitable for low order flow measurements.

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来源期刊
Instruments and Experimental Techniques
Instruments and Experimental Techniques 工程技术-工程:综合
CiteScore
1.20
自引率
33.30%
发文量
113
审稿时长
4-8 weeks
期刊介绍: Instruments and Experimental Techniques is an international peer reviewed journal that publishes reviews describing advanced methods for physical measurements and techniques and original articles that present techniques for physical measurements, principles of operation, design, methods of application, and analysis of the operation of physical instruments used in all fields of experimental physics and when conducting measurements using physical methods and instruments in astronomy, natural sciences, chemistry, biology, medicine, and ecology.
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