Laser-induced in-situ electrohydrodynamic jet printing of micro/nanoscale hierarchical structure

IF 5.4 3区 材料科学 Q2 CHEMISTRY, PHYSICAL ACS Applied Energy Materials Pub Date : 2024-09-20 DOI:10.1016/j.optlastec.2024.111812
Kai Li , Long Sun , Fan Du , Chao Wang , Junyang Fang , Mingzhen Li , Yexin Wang , Xiaoying Wang , Jinbang Li
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Abstract

With the rapid advancement of micro/nanoscale devices, there is a growing demand for hierarchical micro/nano porous-structure, particularly in fields of high-performance sensors, electrochemical energy storage, and photocatalysis. The fabrication methods for hierarchical micro/nano-porous structures have been limited by complex processes and high costs, making further development and application difficult. In this paper, a novel strategy of laser-induced in-situ electrohydrodynamic jet (E-Jet) printing of hierarchical micro/nano-porous structures was proposed. Based on the mechanism of high-energy laser beam induction on the jet, it successfully fabricated hierarchical porous ZnO structures from nanoscale to dozens of microns. The jet size focusing and solidification behavior were analyzed by combining experimental and simulative exploration. The resultant effects of the thermal field, flow field, and laser field on the spatial temperature distribution and the jetting morphology were examined. Furthermore, the laser-induced influence on the morphology of the printed micro/nano-porous ZnO structures was explored. Meanwhile, the performance of micro/nano-porous ZnO photoelectric sensors printed by E-Jet under different laser powers was investigated. The laser-induced in-situ E-Jet printing method provided an innovative pattern for the high-resolution additive manufacturing of hierarchical porous structures, demonstrating its potential for applications in advanced material and high-performance devices.

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激光诱导原位电流体动力喷射打印微/纳米级分层结构
随着微米/纳米级器件的快速发展,对分层微米/纳米多孔结构的需求日益增长,尤其是在高性能传感器、电化学储能和光催化等领域。分层微/纳米多孔结构的制造方法受限于复杂的工艺和高昂的成本,使得进一步的开发和应用变得困难。本文提出了一种激光诱导原位电流体动力喷射(E-Jet)打印分层微/纳米多孔结构的新策略。基于高能激光束在射流上的感应机制,成功制备了从纳米级到数十微米的分层多孔氧化锌结构。结合实验和模拟探索,分析了射流尺寸聚焦和凝固行为。研究了热场、流场和激光场对空间温度分布和喷射形态的影响。此外,还探讨了激光对印刷微/纳米多孔氧化锌结构形态的影响。同时,研究了不同激光功率下 E-Jet 打印的微/纳米多孔 ZnO 光电传感器的性能。激光诱导原位 E-Jet 打印方法为高分辨率增材制造分层多孔结构提供了一种创新模式,展示了其在先进材料和高性能器件中的应用潜力。
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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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