Mechanically robust ultrathin nanofibrous films by using microfluidic-based continuous printing†

IF 12.2 2区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Xiao Chen, Jiaqing Su, Sha Cheng, Cheng Huang, Chunxia Zhao, Chao Teng and Pengchao Zhang
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Abstract

Ultrathin nanofibrous films with unique properties, such as controlled thickness, structures, and excellent mechanical robustness, play a vital role in flexible wearable devices, electronic skin, and rechargeable batteries. However, nanofibrous films are always facing limitations in their mechanical properties, even though they are strong when used as textiles, mainly owing to their structural shortcomings by using conventional fabrication methods. Herein, we present the fabrication of free-standing ultrathin nanofibrous films with good mechanical properties by using a microfluidic-based continuous printing strategy. Owing to the precisely controllable microfluidic flow in the micrometre-scale, the resulting aramid nanofibre (ANF) films can reach thicknesses as low as 140 ± 25 nm. Specifically, the tensile strength of such ultrathin ANF films is recorded at an impressive value of 667 ± 40 MPa, representing a 120% improvement compared to the films prepared by using casting method. Such excellent mechanical robustness comes from the double-sided protonation, which shows a symmetrically dense structure compared to the asymmetric structure of cast films. Furthermore, we demonstrate the continuous fabrication of thin regenerated cellulose nanofiber (RCNF) and cellulose diacetate (CDA) films using the microfluidic-based printing strategy. Both microfluidic-based films show significant enhancements in strength, with a 42% increase for RCNF and a 94% increase for CDA compared to their cast films. We envision that this microfluidic-based continuous printing strategy provides a promising pathway for the development of advanced ultrathin nanofibrous films towards practical applications.

Abstract Image

Abstract Image

利用基于微流体的连续打印技术制作机械坚固的超薄纳米纤维膜。
超薄纳米纤维薄膜具有独特的性能,如厚度可控、结构可调以及出色的机械坚固性,在柔性可穿戴设备、电子皮肤和充电电池中发挥着重要作用。然而,纳米纤维薄膜在作为纺织品使用时,虽然具有很强的机械性能,但始终面临着机械性能方面的限制,这主要是由于采用传统的制造方法存在结构上的缺陷。在此,我们介绍了利用基于微流体的连续打印策略制备具有良好机械性能的独立超薄纳米纤维薄膜的方法。由于微米尺度的微流体流动可精确控制,所制备的芳纶纳米纤维(ANF)薄膜厚度可低至 140 ± 25 nm。具体来说,这种超薄 ANF 薄膜的拉伸强度达到了令人印象深刻的 667 ± 40 兆帕,与采用浇铸法制备的薄膜相比提高了 120%。这种出色的机械坚固性来自于双面质子化,与浇铸薄膜的非对称结构相比,它呈现出对称的致密结构。此外,我们还展示了利用微流体打印策略连续制备再生纤维素纳米纤维(RCNF)和二醋酸纤维素(CDA)薄膜的方法。与浇铸薄膜相比,这两种基于微流体的薄膜的强度都有显著提高,RCNF 的强度提高了 42%,CDA 的强度提高了 94%。我们认为,这种基于微流体的连续打印策略为开发先进的超薄纳米纤维薄膜提供了一条很有前景的途径,从而实现了实际应用。
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来源期刊
Materials Horizons
Materials Horizons CHEMISTRY, MULTIDISCIPLINARY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
18.90
自引率
2.30%
发文量
306
审稿时长
1.3 months
期刊介绍: Materials Horizons is a leading journal in materials science that focuses on publishing exceptionally high-quality and innovative research. The journal prioritizes original research that introduces new concepts or ways of thinking, rather than solely reporting technological advancements. However, groundbreaking articles featuring record-breaking material performance may also be published. To be considered for publication, the work must be of significant interest to our community-spanning readership. Starting from 2021, all articles published in Materials Horizons will be indexed in MEDLINE©. The journal publishes various types of articles, including Communications, Reviews, Opinion pieces, Focus articles, and Comments. It serves as a core journal for researchers from academia, government, and industry across all areas of materials research. Materials Horizons is a Transformative Journal and compliant with Plan S. It has an impact factor of 13.3 and is indexed in MEDLINE.
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