National Engineering Laboratory for Biomass Power Generation Equipment, School of Renewable Energy Engineering, North China Electric Power University , Beijing 102206, P.R. China.
College of Chemistry and Molecular Engineering, Peking University , Beijing 100871, P.R. China.
ACS Nano. 2017 Aug 22;11(8):8144-8152. doi: 10.1021/acsnano.7b03057. Epub 2017 Jul 27.
Lithium-tellurium (Li-Te) batteries are attractive for energy storage owing to their high theoretical volumetric capacity of 2621 mAh cm. In this work, highly nanoporous cobalt and nitrogen codoped carbon polyhedra (C-Co-N) derived from a metal-organic framework (MOF) is synthesized and employed as tellurium host for Li-Te batteries. The Te@C-Co-N cathode with a high Te loading of 77.2 wt % exhibits record-breaking electrochemical performances including an ultrahigh initial capacity of 2615.2 mAh cm approaching the theoretical capacity of Te (2621 mAh cm), a superior cycling stability with a high capacity retention of 93.6%, a ∼99% Columbic efficiency after 800 cycles as well as rate capacities of 2160, 1327.6, and 894.8 mAh cm at 4, 10, and 20 C, respectively. The redox chemistry of tellurium is revealed by in operando Raman spectroscopic analysis and density functional theory simulations. The results illustrate that the performances are attributed to the highly conductive C-Co-N matrix with an advantageous structure of abundant micropores, which provides highly efficient channels for electron transfer and ionic diffusion as well as sufficient surface area to efficiently host tellurium while mitigating polytelluride dissolution and suppressing volume expansion.
锂碲(Li-Te)电池因其具有 2621mAhcm 的理论比容量而在储能方面具有吸引力。在这项工作中,通过合成金属有机骨架(MOF)衍生的高纳米多孔钴和氮共掺杂碳多面体(C-Co-N),并将其用作 Li-Te 电池的碲宿主。具有 77.2wt%高碲负载量的 Te@C-Co-N 正极表现出创纪录的电化学性能,包括超高初始容量 2615.2mAhcm,接近碲的理论容量(2621mAhcm),优异的循环稳定性,高容量保持率为 93.6%,800 次循环后的库仑效率约为 99%,在 4、10 和 20C 时的倍率容量分别为 2160、1327.6 和 894.8mAhcm。通过原位拉曼光谱分析和密度泛函理论模拟揭示了碲的氧化还原化学。结果表明,这些性能归因于具有丰富微孔的高导电性 C-Co-N 基体,其提供了高效的电子转移和离子扩散通道,以及足够的表面积来有效地容纳碲,同时减轻聚碲化物的溶解和抑制体积膨胀。