<p>Copper sulfide (CuS), under the category of metal sulfide, remains as promising anode for Sodium-ion Batteries (SIBs) with a theoretical capacity of 560 mAhg<sup>−1</sup>. CuS suffers from polysulfide formation, severe capacity fading upon cycling. To address these issues addition of bio-carbon is sought as a measure in this work. A porous carbon has been successively synthesized from sodium alginate source with a specific surface area of 38.78 m<sup>2</sup>g<sup>−1</sup> and an average pore volume of 3.40&#xa0;nm. The addition of prepared porous carbon to copper sulfide (CuS) enhances stability in the electrochemical performance with the value of 442 mAhg<sup>−1</sup> being the initial discharge capacity observed at a current density of 100 mAg<sup>−1</sup> over 500 cycles. The technology in performing solid-state reaction is well established and does not demand high infrastructure for atmospheric control thus facilitating large-scale production. Therefore, this work throws light on the benefit of adding bio-carbon to CuS.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Contribution of sodium alginate-derived bio-carbon towards enhanced electrochemical performance of CuS anodes in Na Batteries

  • P. Priyanka,
  • B. Nalini,
  • G. G. Soundarya,
  • P. Balraju

摘要

Copper sulfide (CuS), under the category of metal sulfide, remains as promising anode for Sodium-ion Batteries (SIBs) with a theoretical capacity of 560 mAhg−1. CuS suffers from polysulfide formation, severe capacity fading upon cycling. To address these issues addition of bio-carbon is sought as a measure in this work. A porous carbon has been successively synthesized from sodium alginate source with a specific surface area of 38.78 m2g−1 and an average pore volume of 3.40 nm. The addition of prepared porous carbon to copper sulfide (CuS) enhances stability in the electrochemical performance with the value of 442 mAhg−1 being the initial discharge capacity observed at a current density of 100 mAg−1 over 500 cycles. The technology in performing solid-state reaction is well established and does not demand high infrastructure for atmospheric control thus facilitating large-scale production. Therefore, this work throws light on the benefit of adding bio-carbon to CuS.