Green biomass-derived hierarchically porous non-activated carbon from carob waste for high-performance lithium-sulfur batteries

被引:1
|
作者
Zoubir, Otmane [1 ]
Lallaoui, Abdelfettah [1 ]
Edfouf, Zineb [1 ,2 ]
Caballero, Alvaro [3 ]
Tesio, Alvaro Y. [3 ,4 ]
机构
[1] Moroccan Fdn Adv Sci Innovat & Res MAScIR, Rabat Morocco, Morocco
[2] Mohammed Vth Univ Rabat, Fac Sci, Mat & Nanomat Photovolta & Electrochem Storage MAN, Rabat, Morocco
[3] Univ Cordoba, Inst Quim Energia & Medioambiente, Dept Quim Inorgan, Campus Rabanales, Cordoba 14014, Spain
[4] Ctr Desarrollo Tecnolo Gen Manuel Savio, Ctr Invest & Desarrollo Mat Avanzados & Almacenami, RA-4612 Palpala, Jujuy, Argentina
关键词
Biomass -derived carbon; Carob; Green synthesis; Composite cathode; High sulfur content; Lithium -sulfur battery; Sustainable energy storage; LI-S BATTERIES; ACTIVATED CARBON; SELF-ACTIVATION; GRAPHENE; CATHODES; COMPOSITE; OPTIMIZATION; METHODOLOGY; FABRICATION; CHALLENGES;
D O I
10.1016/j.mtsust.2024.100895
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
To expedite the development of lithium-sulfur (Li-S) battery technology, it is necessary to address the inherent technological hurdles surrounding sulfur-based cathodes, including mitigating the shuttle effect and enhancing the electrical conductivity of sulfur. The use of biomass-derived carbonaceous materials offers a promising avenue to alleviate these challenges and help reduce the carbon footprint associated with battery technologies. Herein, we report the green synthesis of carob-derived carbonaceous material without additional physical/ chemical activation steps, making the process sustainable, affordable, and eco-friendly. The obtained carobderived carbon (CC) offers a hierarchical micro/meso/macroporous structure with a high surface area of 633 m 2 g-1 . The electrochemical performance with a sulfur content of 70% (CC@S70) in the composite and a sulfur mass loading of 1 mg cm-2 delivers an initial discharge capacity of 1405 mAh g-1 , reducing to 798 mAh g-1 after 260 cycles. Increasing the sulfur content to 90% in the cathode (CC@S90) yields a high capacity in Li-S cells, reaching a discharge capacity of 937 mAh g-1 with a sulfur loading of 2 mg cm-2 at 0.3C (1C = 1675 mA g-1 ) after 100 cycles. The improved performance can be attributed to the well-preserved interconnected pores within the carbon material, serving as an efficient framework to accommodate high sulfur content.
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页数:11
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