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基于室温还原自组装策略的大面积超弹性石墨烯气凝胶用于传感和颗粒物(PM)捕获。

Large-area superelastic graphene aerogels based on a room-temperature reduction self-assembly strategy for sensing and particulate matter (PM and PM) capture.

作者信息

Yan Shuang, Zhang Gongzheng, Li Feibo, Zhang Li, Wang Sitong, Zhao Huhu, Ge Qi, Li Huanjun

机构信息

School of Chemistry and Chemical Engineering, Beijing Institute of Technology, 100081, P. R. China.

出版信息

Nanoscale. 2019 May 30;11(21):10372-10380. doi: 10.1039/c9nr02071c.

DOI:10.1039/c9nr02071c
PMID:31107474
Abstract

Graphene aerogels are emerging low density and superelasticity macroscopic porous materials with various applications. However, it still remains a challenge to develop a versatile strategy under ambient conditions for fabricating large-area, high-performance graphene aerogels, which is crucial for their practical applications. Here, we report a novel room-temperature reduction self-assembly (RTRS) strategy to fabricate large-area graphene aerogels under ambient conditions. The strategy is based on using unique hydrazine hydrates as reducing agents to generate stable microbubbles beneficial for the formation of macroporous graphene hydrogels. Interestingly, the resultant hydrogel followed by a simple pre-freeze treatment can be naturally dried into graphene aerogels without noticeable volume shrinkage or structure cracking. Benefiting from the mild conditions, a large-area graphene aerogel with a diameter of up to 27 cm was prepared as an example. The as-formed aerogels exhibit a stable honeycomb-like coarse-pores structure, a low density of 3.6 mg cm-3 and superelasticity (rapidly recoverable from 95% compression) which are suitable for pressure/strain sensors. Moreover, the aerogel exhibits superior particulate matter adsorption efficiency (PM2.5: 93.7%, PM10: 96.2%) and good recycling ability. Importantly, the preparation process is cost-effective and easily scalable without the need for any special drying techniques and heating processes, which provides an ideal platform for mass production of graphene aerogels toward practical applications.

摘要

石墨烯气凝胶是一种新兴的具有低密度和超弹性的宏观多孔材料,具有多种应用。然而,在环境条件下开发一种通用策略来制备大面积、高性能的石墨烯气凝胶仍然是一个挑战,这对其实际应用至关重要。在此,我们报告了一种新颖的室温还原自组装(RTRS)策略,用于在环境条件下制备大面积石墨烯气凝胶。该策略基于使用独特的水合肼作为还原剂来产生稳定的微气泡,这有利于大孔石墨烯水凝胶的形成。有趣的是,所得水凝胶经过简单的预冷冻处理后可以自然干燥成石墨烯气凝胶,而不会有明显的体积收缩或结构开裂。得益于温和的条件,以制备出直径达27厘米的大面积石墨烯气凝胶为例。所形成的气凝胶呈现出稳定的蜂窝状粗孔结构、3.6毫克/立方厘米的低密度和超弹性(从95%的压缩状态快速恢复),适用于压力/应变传感器。此外,该气凝胶表现出优异的颗粒物吸附效率(PM2.5:93.7%,PM10:96.2%)和良好的循环利用能力。重要的是,制备过程具有成本效益且易于扩展,无需任何特殊的干燥技术和加热过程,这为大规模生产面向实际应用的石墨烯气凝胶提供了理想平台。

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