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3D 打印技术助力纳米颗粒排列:机制与应用综述。

3D Printing-Enabled Nanoparticle Alignment: A Review of Mechanisms and Applications.

机构信息

The Polytechnic School (TPS), Ira A. Fulton Schools for Engineering, Arizona State University, 6075 S. Innovation Way West, Mesa, AZ, 85212, USA.

Department of Materials Science and Engineering, Ira A. Fulton Schools for Engineering, Arizona State University, Tempe, 501 E. Tyler Mall, Tempe, AZ, 85287, USA.

出版信息

Small. 2021 Nov;17(45):e2100817. doi: 10.1002/smll.202100817. Epub 2021 Jun 27.

Abstract

3D printing (additive manufacturing (AM)) has enormous potential for rapid tooling and mass production due to its design flexibility and significant reduction of the timeline from design to manufacturing. The current state-of-the-art in 3D printing focuses on material manufacturability and engineering applications. However, there still exists the bottleneck of low printing resolution and processing rates, especially when nanomaterials need tailorable orders at different scales. An interesting phenomenon is the preferential alignment of nanoparticles that enhance material properties. Therefore, this review emphasizes the landscape of nanoparticle alignment in the context of 3D printing. Herein, a brief overview of 3D printing is provided, followed by a comprehensive summary of the 3D printing-enabled nanoparticle alignment in well-established and in-house customized 3D printing mechanisms that can lead to selective deposition and preferential orientation of nanoparticles. Subsequently, it is listed that typical applications that utilized the properties of ordered nanoparticles (e.g., structural composites, heat conductors, chemo-resistive sensors, engineered surfaces, tissue scaffolds, and actuators based on structural and functional property improvement). This review's emphasis is on the particle alignment methodology and the performance of composites incorporating aligned nanoparticles. In the end, significant limitations of current 3D printing techniques are identified together with future perspectives.

摘要

3D 打印(增材制造(AM))具有巨大的潜力,可用于快速模具和大规模生产,因为它具有设计灵活性,并且大大缩短了从设计到制造的时间线。目前的 3D 打印技术侧重于材料的可制造性和工程应用。然而,仍然存在打印分辨率和加工速度低的瓶颈,特别是在需要在不同尺度上定制纳米材料的情况下。一个有趣的现象是纳米颗粒的优先取向,这可以增强材料性能。因此,本综述强调了 3D 打印背景下纳米颗粒的取向景观。本文简要概述了 3D 打印,然后全面总结了在成熟的和内部定制的 3D 打印机制中实现的纳米颗粒的 3D 打印辅助取向,这些机制可以导致纳米颗粒的选择性沉积和优先取向。随后列出了利用有序纳米颗粒特性的典型应用(例如结构复合材料、热导体、化学电阻传感器、工程表面、组织支架和基于结构和功能特性改进的致动器)。本综述的重点是颗粒取向方法以及包含定向纳米颗粒的复合材料的性能。最后,确定了当前 3D 打印技术的显著局限性,并提出了未来展望。

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