首页> 外文期刊>Desalination: The International Journal on the Science and Technology of Desalting and Water Purification >Bacterial-cellulose-derived carbonaceous electrode materials for water desalination via capacitive method: The crucial role of defect sites
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Bacterial-cellulose-derived carbonaceous electrode materials for water desalination via capacitive method: The crucial role of defect sites

机译:通过电容法用于水脱盐的细菌 - 纤维素 - 衍生的碳质电极材料:缺陷位点的关键作用

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摘要

Electrosorptive desalination is a very simple and appealing approach to satisfy the increasing demand for drinking water. The large-scale application of this technology calls for the development of easy-to-produce, cheap and highly performing electrode materials and for the identification and tailoring of their most influential properties, as well. Here, biosynthesised bacterial cellulose is used as a carbon precursor for the production of three-dimensional nanostructures endowed with hierarchically porous architecture and different density and type of intrinsic and hetero-atom induced lattice defects. The produced materials exhibit unprecedented desalination capacities for carbon-based electrodes. At an initial concentration of 585 mg L-1 (10 mmol L-1), they are able to remove from 55 to 79 mg g(-1) of sa as the initial concentration rises to 11.7 g L-1 (200 mmol L-1), their salt adsorption capacity reaches values ranging between 1.03 and 1.35 g g(-1). The results of the thorough material characterisation by complementary techniques evidence that the relative amount of oxygenated surface functional species enhancing the electrode wettability play a crucial role at lower NaCl concentrations, whereas the availability of active non-sp(2) defect sites for adsorption is mainly influential at higher salt concentrations.
机译:电热脱盐是一种非常简单且吸引人的方法,以满足饮用水的不断增加的需求。这种技术的大规模应用要求开发易于生产,便宜且高度性能的电极材料,以及识别和裁剪其最具影响力的属性。这里,生物合成的细菌纤维素用作生产三维纳米结构的碳前体,赋予具有分层多孔结构的三维纳米结构和不同的密度和类型的内在和异质原子诱导的晶格缺陷。所生产的材料表现出前所未有的碳基电极的脱盐能力。在初始浓度为585mg L-1(10mmol L-1),它们能够从55至79mg(-1)盐中除去;随着初始浓度升至11.7g L-1(200mmol L-1),它们的盐吸附能力达到1.03和1.35gg(-1)之间的值。通过互补技术的透彻材料表征的结果证据表明,增强电极润湿性的含氧表面官能种类的相对量在较低的NaCl浓度下起着至关重要的作用,而活性非SP(2)缺陷位点的可用性主要是在较高的盐浓度下有影响力。

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