Shi Weiwei, Zhang Quanqi, Liu Shiji, Su Suisui, Chang Binbin, Yang Baocheng
Henan Provincial Key Laboratory of Nanocomposites and Applications, Institute of Nanostructured Functional Materials, Huanghe Science and Technology College, Zhengzhou, Henan 450006, China.
Henan Provincial Key Laboratory of Nanocomposites and Applications, Institute of Nanostructured Functional Materials, Huanghe Science and Technology College, Zhengzhou, Henan 450006, China.
J Colloid Interface Sci. 2021 Oct 15;600:670-680. doi: 10.1016/j.jcis.2021.04.146. Epub 2021 May 13.
The superior ultramicroporosity and enriched surface CO-philic sites are simultaneously required features for high-efficiency carbon-based CO adsorbents. Unfortunately, these characteristics are usually incompatible and difficult to integrate into one porous carbon material. Herein, we report a new copper ions (Cu)-assisted dynamic porogen to construct hierarchically microporous carbon nanosheets in a large scale with high heterogeneity for solving such issue. Cu can be equably dispersed in precursor by coordination interactions of COO-Cu and Cu-N, which can anchor more N/O-containing species in final product. The reduced cuprous ions (Cu) in pyrolysis process functions as a dynamic porogen to tailor uniform ultramicropores. Importantly, copper salt extracted in this synthetic procedure allows cyclic utilization, realizing a green and low-cost process. The obtained carbon sheets possess a graphene-like morphology, a high surface area and a high-proportioned multiscale microporosity, especially a high-density ultramicropores of 0.4-0.7 nm and supermicroproes of 0.8-1.5 nm. The maximized synergistic effect of morphology, high density of multi-sized ultramicroporosity and surface high heterogeneity endow the resultant microporous carbon nanosheets with the remarkable CO capture property, including a high uptake, a moderate adsorption heat, a good selectivity and superior recyclability.
高效碳基一氧化碳吸附剂同时需要具有优异的超微孔性和丰富的表面亲一氧化碳位点。不幸的是,这些特性通常是不相容的,并且难以整合到一种多孔碳材料中。在此,我们报道了一种新型的铜离子(Cu)辅助动态致孔剂,用于大规模构建具有高度非均质性的分级微孔碳纳米片,以解决此类问题。通过COO-Cu和Cu-N的配位相互作用,Cu可以均匀地分散在前体中,这可以在最终产物中锚定更多含N/O的物种。热解过程中还原的亚铜离子(Cu)作为动态致孔剂来定制均匀的超微孔。重要的是,在该合成过程中提取的铜盐可循环利用,实现了绿色低成本工艺。所获得的碳片具有类似石墨烯的形态、高比表面积和高比例的多尺度微孔性,特别是具有0.4-0.7nm的高密度超微孔和0.8-1.5nm的超微孔。形态、多尺寸超微孔的高密度以及表面高非均质性的最大化协同效应赋予了所得微孔碳纳米片卓越的CO捕获性能,包括高吸附量、适度的吸附热、良好的选择性和优异的可回收性。