Scalable production of critically thin polyethylene films via multistep stretching

Runlai Li, Zirui Wang, Weilong Sun, He Zhang, Yuwen Zeng, Xiaoxu Zhao, Wenbing Hu, Hua Deng, Kian Ping Loh, Qiang Fu
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Abstract

Plastic films are among the most used materials. In many applications, both high strength and low thickness are required. The thickness of free-standing plastic films has recently been reduced to micrometres, 200 nm and even 60 nm. Pushing this boundary further faces considerable challenges, as processability conflicts with stability at the ‘ultrathin’ scale (below ~100–200 nm). Here, to overcome this trade-off, we modulated the entanglement density of plastic chains to identify a maximum stretching processing window. Then, relaxation was introduced during stretching to kinetically stabilize the ultrathin film. Combined, polyethylene film thicknesses were reduced to ~12 nm, near its critical thickness. This critically thin polyethylene reveals physical properties different from its bulk counterparts, such as high mechanical strength (113.9 GPa (g cm–3)–1), abnormal interfacial properties and a high aspect ratio near 108. Potential applications of these films include nuclear fusion ignition support and thin breathable epidermal sensors. Our work reveals advanced processing strategies, distinctive properties and broader applications of plastic films near the processing limit. A multistep stretch–relaxation process is used to produce critically thin polyethylene films. Several key physical properties of the polyethylene films are presented, and their potential applications in nuclear fusion and epidermal sensing are highlighted.

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通过多步拉伸可扩展生产极薄聚乙烯薄膜
塑料薄膜是最常用的材料之一。在许多应用中,高强度和低厚度都是必需的。近年来,独立塑料薄膜的厚度已降至微米级、200纳米级甚至60纳米级。进一步突破这一界限面临着相当大的挑战,因为可加工性与“超薄”尺度(低于~100 - 200nm)的稳定性相冲突。在这里,为了克服这种权衡,我们调整了塑料链的纠缠密度,以确定最大拉伸处理窗口。然后,在拉伸过程中引入弛豫来稳定超薄膜的动力学。复合后,聚乙烯薄膜厚度降至~12 nm,接近其临界厚度。这种极薄的聚乙烯显示出不同于大块材料的物理性能,如高机械强度(113.9 GPa (g cm-3) -1)、异常的界面性能和接近108的高纵横比。这些薄膜的潜在应用包括核聚变点火支撑和薄透气表皮传感器。我们的工作揭示了先进的加工策略,独特的性能和更广泛的应用塑料薄膜接近加工极限。多步骤拉伸松弛工艺用于生产极薄的聚乙烯薄膜。介绍了聚乙烯薄膜的几个关键物理性能,并重点介绍了其在核聚变和表皮传感方面的潜在应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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