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基于废秸秆的纤维素基海绵@ZIF-8用于水消毒

Cellulose-based sponge@ZIF-8 from waste straws for water disinfection.

作者信息

Li Jingyu, Zhang Yang, Sui Guoxin

机构信息

Shi-Changxu Innovation Center for Advanced Materials, Institute of Metal Research, Chinese Academy of Sciences Shenyang 110016 China

School of Materials Science and Engineering, University of Science and Technology of China Shenyang 110016 China.

出版信息

RSC Adv. 2023 Mar 8;13(11):7554-7560. doi: 10.1039/d3ra00243h. eCollection 2023 Mar 1.

Abstract

In this study, zeolitic imidazolate framework-8 (ZIF-8) nanoparticles can be readily generated on the skeleton surface throughout the entire structure of cellulose-based sponges obtained from waste corn straws a hydrothermal process. Taking natural corn straws as the basic ingredient, the Water Cellulose-based Sponge@ZIF-8 (WCSZ) composite inherits the highly porous structure of straws, which is beneficial for the movement of HO molecules in both horizontal and vertical directions. A robust H-bond topological network is weaved between abundant hydroxyl groups of the corn straw cell wall matrix and HO molecules in the honeycomb cellular structure. Based on the topological network, the WCSZ composite maintains sufficient mechanical compressibility and elasticity, which could sustain repeated squeezing without structural failure. The WCSZ composite can not only bear a compressive strain as high as 60% but also completely recover its original height after the load is removed, exhibiting excellent mechanical property. More importantly, the WCSZ composite also presents exceptional antibacterial activities after ZIF-8 nanoparticles were introduced (antibacterial rate: 99.9%). Consequently, the WCSZ composite is an ideal candidate for highly efficient elimination of bacteria as the reusable water treatment material.

摘要

在本研究中,通过水热法可在由废弃玉米秸秆制备的纤维素基海绵的整个结构的骨架表面上轻松生成沸石咪唑酯骨架结构-8(ZIF-8)纳米颗粒。以天然玉米秸秆为基本成分,水基纤维素海绵@ZIF-8(WCSZ)复合材料继承了秸秆的高度多孔结构,这有利于水分子在水平和垂直方向上的移动。在玉米秸秆细胞壁基质丰富的羟基与蜂窝状细胞结构中的水分子之间编织了一个强大的氢键拓扑网络。基于该拓扑网络,WCSZ复合材料保持了足够的机械压缩性和弹性,能够承受反复挤压而不发生结构破坏。WCSZ复合材料不仅能承受高达60%的压缩应变,而且在去除载荷后能完全恢复其原始高度,表现出优异的机械性能。更重要的是,引入ZIF-8纳米颗粒后,WCSZ复合材料还呈现出优异的抗菌活性(抗菌率:99.9%)。因此,WCSZ复合材料作为可重复使用的水处理材料是高效消除细菌的理想候选材料。

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