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基于MXene的复合材料的3D和4D打印:从基础到新兴应用

3D and 4D printing of MXene-based composites: from fundamentals to emerging applications.

作者信息

Bigham Ashkan, Zarepour Atefeh, Khosravi Arezoo, Iravani Siavash, Zarrabi Ali

机构信息

Institute of Polymers, Composites, and Biomaterials, National Research Council (IPCB-CNR), Naples 80125, Italy.

Department of Chemical, Materials and Production Engineering, University of Naples Federico II, Piazzale V. Tecchio 80, 80125 Naples, Italy.

出版信息

Mater Horiz. 2024 Dec 9;11(24):6257-6288. doi: 10.1039/d4mh01056f.

Abstract

The advent of three-dimensional (3D) and four-dimensional (4D) printing technologies has significantly improved the fabrication of advanced materials, with MXene-based composites emerging as a particularly promising class due to their exceptional electrical, mechanical, and chemical properties. This review explores the fundamentals of MXenes and their composites, examining their unique characteristics and the underlying principles of their synthesis and processing. We highlight the transformative potential of 3D and 4D printing techniques in tailoring MXene-based materials for a wide array of applications. In the field of tissue regeneration, MXene composites offer enhanced biocompatibility and mechanical strength, making them ideal for scaffolds and implants. For drug delivery, the high surface area and tunable surface chemistry of MXenes enable precise control over drug release profiles. In energy storage, MXene-based electrodes exhibit superior conductivity and capacity, paving the way for next-generation batteries and supercapacitors. Additionally, the sensitivity and selectivity of MXene composites make them excellent candidates for various (bio)sensing applications, from environmental monitoring to biomedical diagnostics. By integrating the dynamic capabilities of 4D printing, which introduces time-dependent shape transformations, MXene-based composites can further adapt to complex and evolving functional requirements. This review provides a comprehensive overview of the current state of research, identifies key challenges, and discusses future directions for the development and application of 3D and 4D printed MXene-based composites. Through this exploration, we aim to underscore the significant impact of these advanced materials and technologies on diverse scientific and industrial fields.

摘要

三维(3D)和四维(4D)打印技术的出现显著改善了先进材料的制造,基于MXene的复合材料因其卓越的电学、力学和化学性能而成为一类特别有前景的材料。本综述探讨了MXene及其复合材料的基本原理,研究了它们的独特特性以及合成和加工的基本原理。我们强调了3D和4D打印技术在定制基于MXene的材料以用于广泛应用方面的变革潜力。在组织再生领域,MXene复合材料具有增强的生物相容性和机械强度,使其成为支架和植入物的理想材料。对于药物递送,MXene的高表面积和可调节的表面化学性质能够精确控制药物释放曲线。在能量存储方面,基于MXene的电极表现出优异的导电性和容量,为下一代电池和超级电容器铺平了道路。此外,MXene复合材料的灵敏度和选择性使其成为从环境监测到生物医学诊断等各种(生物)传感应用的优秀候选材料。通过整合4D打印的动态能力,即引入随时间变化的形状转变,基于MXene的复合材料可以进一步适应复杂且不断演变的功能需求。本综述全面概述了当前的研究现状,确定了关键挑战,并讨论了3D和4D打印的基于MXene的复合材料的开发和应用的未来方向。通过这一探索,我们旨在强调这些先进材料和技术对不同科学和工业领域的重大影响。

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