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Encapsulating selenium into macro-/micro-porous biochar-based framework for high-performance lithium-selenium batteries

机译:将硒封装到基于大孔/微孔生物炭的框架中,以用于高性能锂硒电池

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Selenium has a similar lithiation-delithiation mechanism to sulfur but possesses an extremely higher electronic conductivity than sulfur, indicating a promising cathode material for energy storage. In this paper, a new-type porous material of macro-/micro-porous biochar-based (MMPBc) framework derived from the inner spongy layer of pomelo pericarp has been prepared by the initial carbonization and subsequent KOH activation, which is utilized as porous matrix for selenium loading to form Se/MMPBc composite. Due to an optimal weight ratio of carbonized sponge to KOH at 1:2, the resulting porous carbon of MMPBc-3 acquire a specific surface area of 1539.4 m(2) g(-1) and a pore volume is 0.683 cm(3) g(-1) and effectively hosts a 56.1 wt% of elemental selenium. Applied as the cathode material of lithium-selenium batteries, at 0.2 C the composite Se/MMPBc-3 delivers a high reversible capacity of 597.4 or 466.8 mAh g(-1) in the 2nd or 300th cycle. Considering both the pore size distributions of serial MMPBc samples and the cycling stabilities of corresponding Se/MMPBc composites, it is an appropriate balance between the micropores and macropores of pristine MMPBc that predominantly determines the excellent electrochemical durability of corresponding Se/MMPBc composite. (C) 2015 Elsevier Ltd. All rights reserved.
机译:硒具有与硫相似的锂化-脱锂机理,但具有比硫高得多的电子电导率,这表明它是用于储能的有希望的阴极材料。本文通过初始碳化和随后的KOH活化,制备了一种由柚皮内海绵层衍生的新型大孔/微孔生物炭基(MMPBc)多孔材料,该材料被用作多孔材料。硒负载的基质,形成硒/ MMPBc复合材料。由于碳化海绵与KOH的最佳重量比为1:2,因此所得的MMPBc-3多孔碳的比表面积为1539.4 m(2)g(-1),孔容为0.683 cm(3) g(-1)并有效容纳56.1 wt%的元素硒。 Se / MMPBc-3复合材料用作锂硒电池的阴极材料,在0.2 C下的第2个或第300个循环中可提供597.4或466.8 mAh g(-1)的高可逆容量。考虑到连续MMPBc样品的孔径分布以及相应的Se / MMPBc复合材料的循环稳定性,原始MMPBc的微孔和大孔之间的适当平衡主要决定了相应的Se / MMPBc复合材料的优异电化学耐久性。 (C)2015 Elsevier Ltd.保留所有权利。

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