Choi Yunju, Jang Hyungil, Kim Jong-Pil, Lee Jaeyeong, Jeong Euh Duck, Bae Jong-Seong, Shin Heon-Cheol
Busan Center, Korea Basic Science Institute (KBSI), Busan 46742, Republic of Korea.
Department of Materials Science and Engineering, Pusan National University, Busan 46241, Republic of Korea.
Nanomaterials (Basel). 2024 Feb 19;14(4):385. doi: 10.3390/nano14040385.
A carbonized interlayer effectively helps to improve the electrochemical performance of lithium-sulfur (Li-S) batteries. In this study, a simple and inexpensive carbon intermediate layer was fabricated using a traditional Korean paper called "hanji". This carbon interlayer has a fibrous porous structure, with a specific surface area of 91.82 m g and a BJH adsorption average pore diameter of 26.63 nm. The prepared carbon interlayer was utilized as an intermediary layer in Li-S batteries to decrease the charge-transfer resistance and capture dissolved lithium polysulfides. The porous fiber-shaped carbon interlayer suppressed the migration of polysulfides produced during the electrochemical process. The carbon interlayer facilitates the adsorption of soluble lithium polysulfides, allowing for their re-utilization in subsequent cycles. Additionally, the carbon interlayer significantly reduces the polarization of the cell. This simple strategy results in a significant improvement in cycle performance. Consequently, the discharge capacity at 0.5 C after 150 cycles was confirmed to have improved by more than twofold, reaching 230 mAh g for cells without the interlayer and 583 mAh g for cells with the interlayer. This study demonstrates a simple method for improving the capacity of Li-S batteries by integrating a functional carbon interlayer.
碳化中间层有效地有助于提高锂硫(Li-S)电池的电化学性能。在本研究中,使用一种名为“韩纸”的传统韩国纸张制备了一种简单且廉价的碳中间层。该碳中间层具有纤维状多孔结构,比表面积为91.82 m²/g,BJH吸附平均孔径为26.63 nm。所制备的碳中间层被用作Li-S电池的中间层,以降低电荷转移电阻并捕获溶解的多硫化锂。多孔纤维状碳中间层抑制了电化学过程中产生的多硫化物的迁移。碳中间层促进了可溶性多硫化锂的吸附,使其能够在后续循环中重新利用。此外,碳中间层显著降低了电池的极化。这种简单的策略导致循环性能有显著提高。因此,150次循环后0.5 C下的放电容量得到证实,无中间层的电池提高了两倍多,达到230 mAh/g,有中间层的电池达到583 mAh/g。本研究展示了一种通过集成功能性碳中间层来提高Li-S电池容量的简单方法。