College of Chemical and Environmental Engineering, Shandong University of Science and Technology , Qianwangang Road 579, Qingdao 266590, P. R. China.
CAS Key Laboratory of Bio-Based Materials, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences , Songling Road 189, Qingdao 266101, P. R. China.
ACS Appl Mater Interfaces. 2018 Jan 24;10(3):2850-2858. doi: 10.1021/acsami.7b17415. Epub 2018 Jan 11.
Marine shells not only represent a rapidly accumulating type of fishery wastes but also offer a unique sort of hybrid nanomaterials produced greenly and massively in nature. The elaborate "brick and mortar" structures of nacre enabled the synthesis of carbon nanomeshes with <1 nm thickness, hierarchical porosity, and high specific surface area through pyrolysis, in which two-dimensional (2D) organic layers served as the carbonaceous precursor and aragonite platelets as the hard template. Mineral bridges within 2D organic layers templated the formation of mesh pores of 20-70 nm. In contrast to other hydrophobic carbon nanomaterials, these carbon nanomeshes showed super dispersibility in diverse solvents and thus processability for membranes through filtration, patterning, spray-coating, and ink-writing. The carbon membranes with layered structures were capable of serving not only for high-flux filtration and continuous flow absorption but also for electrochemical and strain sensing with high sensitivity. Thus, utilization of marine shells, on one hand, relieves the environmental concern of shellfish waste, on the other hand, offers a facile, green, low-cost, and massive approach to synthesize unique carbon nanomeshes alternative to graphene nanomeshes and applicable in environmental adsorption, filtration, wearable sensors, and flexible microelectronics.
海洋贝壳不仅代表了一种快速积累的渔业废弃物,而且还提供了一种独特的混合纳米材料,这些材料是在自然界中以绿色和大规模的方式产生的。珍珠母的精细“砖和砂浆”结构使得通过热解可以合成厚度<1nm、具有分级多孔性和高比表面积的碳纳米网,其中二维(2D)有机层作为碳前驱体,文石片层作为硬模板。2D 有机层内的矿物桥模板化形成了 20-70nm 的网孔。与其他疏水性碳纳米材料不同,这些碳纳米网在各种溶剂中表现出超分散性,因此可以通过过滤、图案化、喷涂和油墨书写等方法制备成膜。具有层状结构的碳膜不仅可以用于高通量过滤和连续流动吸收,而且还可以用于电化学和应变传感,具有高灵敏度。因此,一方面利用海洋贝壳可以减轻贝类废物对环境的关注,另一方面为合成独特的碳纳米网提供了一种简便、绿色、低成本、大规模的方法,这些碳纳米网可以替代石墨烯纳米网,应用于环境吸附、过滤、可穿戴传感器和柔性微电子学。