Cheng Zheng, Li Jinpeng, Wang Bin, Zeng Jinsong, Xu Jun, Gao Wenhua, Zhu Shiyun, Hu Fugang, Dong Jiran, Chen Kefu
State Key Laboratory of Pulp and Paper Engineering, Plant Fiber Research Center, South China University of Technology, Guangzhou 510640, China.
School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou 510640, China.
ACS Appl Bio Mater. 2020 Nov 16;3(11):7483-7491. doi: 10.1021/acsabm.0c00708. Epub 2020 Oct 25.
Efficient selective separation of oils or organic pollutants from water is important for ecological, environmental conservation and sustainable development. Various absorption methods have emerged; the majority of them still suffer from defects including low removal efficiency, a complicated preparation process, and high cost. Herein, we present a highly porous and mechanical resilient bacterial cellulose (BC) carbon aerogel directly from BC hydrogel via facile directional freeze-drying and high-temperature carbonization. The resultant BC carbon aerogel showed excellent mechanical compressibility (maximal height compression ∼99.5%) and elastic recovery due to the porous structure. Taking advantages of the high thermal stability and superhydrophobicity, the BC carbon aerogel was directly used as a versatile adsorbent for oil/water separation. The result demonstrated that the BC carbon aerogel showed super oil/water separation selectivity with the oil absorption capacity as high as 132-274 g g. More importantly, the BC carbon aerogel adsorbent can be reused by a simple absorption/combustion method and still keep high-efficiency oil absorption capacity and excellent superhydrophobicity after 20 absorption/combustion cycles, displaying recyclability and robust stability. In sum, the BC carbon aerogel introduced here is easy to fabricate, ecofriendly, highly scalable, low cost, mechanically robust, and reusable; all of these features make it highly attractive for oil/water separation application.
从水中高效选择性分离油类或有机污染物对于生态、环境保护和可持续发展至关重要。各种吸附方法不断涌现;然而,它们中的大多数仍存在缺陷,包括去除效率低、制备过程复杂和成本高。在此,我们通过简便的定向冷冻干燥和高温碳化,直接从细菌纤维素(BC)水凝胶制备出一种具有高度多孔性和机械弹性的BC碳气凝胶。由于其多孔结构,所得的BC碳气凝胶表现出优异的机械压缩性(最大高度压缩率约99.5%)和弹性恢复能力。利用其高热稳定性和超疏水性,BC碳气凝胶直接用作油/水分离的通用吸附剂。结果表明,BC碳气凝胶表现出超油/水分离选择性,吸油能力高达132 - 274 g/g。更重要的是,BC碳气凝胶吸附剂可通过简单的吸附/燃烧方法重复使用,并且在20次吸附/燃烧循环后仍保持高效吸油能力和优异的超疏水性,显示出可回收性和强大的稳定性。总之,本文介绍的BC碳气凝胶易于制备、环保、高度可扩展、成本低、机械性能强且可重复使用;所有这些特性使其在油/水分离应用中极具吸引力。