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具有抗冰性能的电子束三维纳米打印

3D Nanoprinting by Electron-Beam with an Ice Resist.

作者信息

Wu Shan, Zhao Ding, Qiu Min

机构信息

College of Optical Science and Engineering, Zhejiang University, Hangzhou 310027, China.

Key Laboratory of 3D Micro/Nano Fabrication and Characterization of Zhejiang Province, School of Engineering, Westlake University, Hangzhou 310024, China.

出版信息

ACS Appl Mater Interfaces. 2022 Jan 12;14(1):1652-1658. doi: 10.1021/acsami.1c18356. Epub 2021 Dec 22.

Abstract

Following the general trend in the miniaturization of electronic devices, techniques that enable 3D printing at the nanometer scale are gaining momentum. As a widely used planar processing method, electron-beam lithography (EBL) can be employed to create 3D nanostructures in a layer-by-layer fashion. However, compared with other 3D printing techniques, EBL is limited by the stringent requirement of a range of fabrication equipment and complex fabrication processes. Here, we have demonstrated that EBL can be developed to a controllable 3D nanoprinting technology with the aid of ice resists. With carefully selected accelerating voltage, electron dose, and ice thickness, 3D objects can be efficiently printed in a single vacuum system through an iterative process of ice deposition and e-beam exposure. Mixed ice resists containing solid anisole and water are also introduced into the printing process, which offer a flexible control of the thickness of printed layers. Apart from carbonaceous objects obtained with our method, 3D printing of metals is also promising by employing organometallic compounds as ice resists. This study provides a fresh perspective in EBL-based nanofabrication and expands the spectrum of modern additive manufacturing.

摘要

随着电子设备小型化的总体趋势,能够实现纳米级3D打印的技术正日益兴起。作为一种广泛使用的平面加工方法,电子束光刻(EBL)可用于逐层创建3D纳米结构。然而,与其他3D打印技术相比,EBL受到一系列制造设备的严格要求和复杂制造工艺的限制。在此,我们证明了借助抗冰材料,EBL可以发展成为一种可控的3D纳米打印技术。通过精心选择加速电压、电子剂量和冰厚度,可以在单个真空系统中通过冰沉积和电子束曝光的迭代过程高效地打印3D物体。含有固体苯甲醚和水的混合抗冰材料也被引入到打印过程中,这为打印层的厚度提供了灵活的控制。除了用我们的方法获得含碳物体外,通过使用有机金属化合物作为抗冰材料,金属的3D打印也很有前景。这项研究为基于EBL的纳米制造提供了新的视角,并扩展了现代增材制造的范围。

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