4.4 Article

Phase field simulation of electrohydrodynamic jet droplets and printing microstructures on insulating substrates

期刊

MICROELECTRONIC ENGINEERING
卷 261, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.mee.2022.111817

关键词

Phase field simulation; E-Jet printing; Droplets generation; Dc positive pulse voltage; Insulating substrates

资金

  1. National Key R&D Program of China [2018YFA0703200]
  2. National Natural Science Foundation of China [51975104, 62074138]
  3. Ningbo Institute of Dalian University of Technology

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The phase field technique is applied to resolve interfacial problems in E-Jet printing. The study presents a method to generate stable cone jet morphology and analyzes the impact of different substrates on droplet size and polarization of residual charges. The approach can guide printhead and parameter design and is more convenient and efficient for predicting pattern sizes for MEMS device applications.
The phase field technique is a straightforward and effective mathematical model for resolving interfacial problems in E-Jet printing. The paper presents an exhaustive analysis for the Drop-on-demand electrohydrodynamic jet (DoD E-Jet) printing. The study introduces a phase field method to generate a stable cone jet morphology that can allow the production of micron/nano structures on different insulating substrates. Further, the impact of steel needle and quartz capillary were studied on the cone jet morphology for different insulating substrate. In trials, the optimal settings of flow rate and dc positive pulse voltage were adjusted to print drops for numerical simulation verification. However, a distinctive analysis of droplet formation on PET and glass substrates was demonstrated in order to lower droplet size and polarization of residual charges. The model is based on the Taylor-Melcher leaky dielectric model and employs the 2-phase field method to track the interface. The nozzle is capable of producing a magnificent micro-dripping jet and detaching stable drops from the substrate surface. As a result, the results are primarily concerned with droplet diameter and relative permittivity of ink. According to the simulation findings, microdroplets with a diameter of less than 100 mu m are created on PET substrate with quick decay of residual charges, whereas drops with a diameter of less than 50 mu m are formed on glass substrate. Furthermore, it is demonstrated in studies employing a nozzle with an internal diameter of 360 mu m that is fixed to a quartz capillary with a diameter of 50 mu m that it takes a significant amount of time, cost and effort. The approach can significantly guide printhead and parameter design for printing on insulating surfaces. It is a more convenient and efficient method for predicting pattern sizes with a small number of trials for MEMS device applications.

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