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金属氧化物渗透图案化杂化聚合物纳米复合材料的超高弹性储能。

Ultrahigh Elastic Strain Energy Storage in Metal-Oxide-Infiltrated Patterned Hybrid Polymer Nanocomposites.

机构信息

Department of Materials Science and Engineering and Institute of Materials Science, University of Connecticut , 97 North Eagleville Road, Unit 3136, Storrs, Connecticut 06269-3136, United States.

Center for Functional Nanomaterials, Brookhaven National Laboratory , Upton, New York 11973, United States.

出版信息

Nano Lett. 2017 Dec 13;17(12):7416-7423. doi: 10.1021/acs.nanolett.7b03238. Epub 2017 Nov 3.

Abstract

Modulus of resilience, the measure of a material's ability to store and release elastic strain energy, is critical for realizing advanced mechanical actuation technologies in micro/nanoelectromechanical systems. In general, engineering the modulus of resilience is difficult because it requires asymmetrically increasing yield strength and Young's modulus against their mutual scaling behavior. This task becomes further challenging if it needs to be carried out at the nanometer scale. Here, we demonstrate organic-inorganic hybrid composite nanopillars with one of the highest modulus of resilience per density by utilizing vapor-phase aluminum oxide infiltration in lithographically patterned negative photoresist SU-8. In situ nanomechanical measurements reveal a metal-like high yield strength (∼500 MPa) with an unusually low, foam-like Young's modulus (∼7 GPa), a unique pairing that yields ultrahigh modulus of resilience, reaching up to ∼24 MJ/m as well as exceptional modulus of resilience per density of ∼13.4 kJ/kg, surpassing those of most engineering materials. The hybrid polymer nanocomposite features lightweight, ultrahigh tunable modulus of resilience and versatile nanoscale lithographic patternability with potential for application as nanomechanical components which require ultrahigh mechanical resilience and strength.

摘要

弹性模量是衡量材料储存和释放弹性应变能能力的指标,对于实现微纳机电系统中的先进机械致动技术至关重要。一般来说,工程弹性模量的难度很大,因为它需要在不对齐的情况下增加屈服强度和杨氏模量,以对抗它们的相互缩放行为。如果需要在纳米尺度上进行,则此任务会更加具有挑战性。在这里,我们通过在光刻图案化的负光刻胶 SU-8 中利用气相氧化铝渗透,展示了具有最高密度弹性模量之一的有机-无机杂化复合纳米柱。原位纳米力学测量揭示了一种类似金属的高屈服强度(约 500MPa)和异常低的泡沫状杨氏模量(约 7GPa),这种独特的配对可产生超高的弹性模量,高达约 24MJ/m,以及卓越的每密度弹性模量,约为 13.4kJ/kg,超过了大多数工程材料。该混合聚合物纳米复合材料具有重量轻、超高可调弹性模量和多功能纳米尺度光刻图案化能力,可作为需要超高机械弹性和强度的纳米机械组件应用。

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