Dong Jiran, Zeng Jinsong, Wang Bin, Cheng Zheng, Xu Jun, Gao Wenhua, Chen Kefu
State Key Laboratory of Pulp and Paper Engineering, Plant Fiber Research Center, School of Light Industry and Engineering, South China University of Technology, Guangzhou, CN 510640, China.
School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou, CN 510640, China.
ACS Appl Mater Interfaces. 2021 Apr 7;13(13):15910-15924. doi: 10.1021/acsami.1c02394. Epub 2021 Mar 29.
Even though compressible carbon aerogels are widely studied for oil/organic solvent recovery, it is challenging to simultaneously achieve excellent mechanical performance and recovery efficiency due to the brittleness of the carbon skeleton. Here a novel strategy is proposed to efficiently fabricate a 3D elastic reduced graphene oxide (RGO)-cross-linked carbon aerogel. Notably, cellulose nanocrystals (CNCs) isolated from plant pulp act as an essential component, and prehydrolysis liquor (PHL), an industrial byproduct in the plant pulping process, serves as the adhesion promoter to achieve enhancement of the strength and flexibility of the carbon aerogel. For the first time, all components (pulp and PHL) of the tree were fully exploited to design a carbon aerogel. The formation of wavy carbon layers with springboard elastic supporting microstructure enables mechanical stretch and shrink as well as avoids interfacial collapse during compression. Benefiting from the unique wavy layer structure and strong interaction, the carbon aerogels are ultralight (4.98 mg cm) and exhibit supercompression (undergoing extreme strain of 95%) and superelasticity (about 100% height retention after 500 cycles at a strain of 50%). Particularly, the carbon aerogel can selectively and quickly adsorb various oily contaminants, exhibiting high oil/organic solvents absorption capacity (reaches up to 276 g g for carbon tetrachloride) and good recyclability. Finally, practical applications of the carbon aerogel in oil-cleanup and pollution-remediation devices are exhibited. Hence, this versatile and robust functionalized carbon aerogel has promising potential in oil cleanup and pollution remediation.
尽管可压缩碳气凝胶在油/有机溶剂回收方面得到了广泛研究,但由于碳骨架的脆性,要同时实现优异的机械性能和回收效率具有挑战性。在此,我们提出了一种新颖的策略来高效制备三维弹性还原氧化石墨烯(RGO)交联碳气凝胶。值得注意的是,从植物纸浆中分离出的纤维素纳米晶体(CNCs)作为重要成分,而植物制浆过程中的工业副产品预水解液(PHL)作为粘合促进剂,以增强碳气凝胶的强度和柔韧性。首次充分利用树木的所有成分(纸浆和PHL)来设计碳气凝胶。具有跳板弹性支撑微结构的波浪状碳层的形成使得能够进行机械拉伸和收缩,并且避免了压缩过程中的界面坍塌。受益于独特的波浪层结构和强相互作用,碳气凝胶超轻(4.98 mg/cm),表现出超压缩性(承受95%的极端应变)和超弹性(在50%应变下500次循环后高度保留约100%)。特别地,碳气凝胶能够选择性且快速地吸附各种油性污染物,表现出高的油/有机溶剂吸收能力(四氯化碳可达276 g/g)和良好的可回收性。最后,展示了碳气凝胶在油污清理和污染修复装置中的实际应用。因此,这种多功能且坚固的功能化碳气凝胶在油污清理和污染修复方面具有广阔的应用前景。