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压缩各向异性层状纤维素基碳气凝胶,通过碳点增强,用于优异的储能和水去离子化。

Compressible, anisotropic lamellar cellulose-based carbon aerogels enhanced by carbon dots for superior energy storage and water deionization.

机构信息

Key Laboratory of Bio-Based Material Science and Technology of the Ministry of Education, Engineering Research Center of Advanced Wooden Materials of the Ministry of Education, Northeast Forestry University, Harbin, 150040, China.

出版信息

Carbohydr Polym. 2021 Jan 15;252:117209. doi: 10.1016/j.carbpol.2020.117209. Epub 2020 Oct 13.

Abstract

Heteroatom-doped carbon materials have received great attention for applications in electrode materials. However, conventional heteroatom-doping methods sacrifice conductivity, stability, and specific surface area (SSA). Here, the carbon quantum dots (CDs) are used as carriers of N, P, O to form electron-rich regions promoting electron transport without decreasing stability and SSA. The CDs promote the formation of graphitic nitrogen in the composite, which effectively reduces their internal resistance by increasing the dielectric constant. Moreover, the orderly growth of ice crystals generates a unique bridged layer structure under bidirectional freeze-casting in a mixture of GO/CDs/microfibrillated cellulose, which gives the composite super-compressibility. Notably, the optimal sample has a 117% increase in specific capacitance. The CDs also improve wettability and thus reduce the charge transfer resistance giving a large desalination capacity of 32.59 mg g (504 mg L NaCl). This work illustrates the unique role of CDs in improving the electrochemical performance of composites.

摘要

杂原子掺杂碳材料因其在电极材料中的应用而受到广泛关注。然而,传统的杂原子掺杂方法会牺牲电导率、稳定性和比表面积(SSA)。在这里,碳量子点(CDs)被用作 N、P、O 的载体,形成富电子区域,促进电子传输,同时不降低稳定性和 SSA。CDs 促进了复合材料中石墨氮的形成,通过增加介电常数有效地降低了其内阻。此外,在 GO/CDs/微原纤纤维素混合物中进行双向冷冻铸造时,冰晶的有序生长会产生独特的桥接层结构,使复合材料具有超压缩性。值得注意的是,最佳样品的比电容增加了 117%。CDs 还改善了润湿性,从而降低了电荷转移电阻,使脱盐容量达到 32.59mg g(504mg L NaCl)。这项工作说明了 CDs 在改善复合材料电化学性能方面的独特作用。

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