Jing Songjie, Sun Zhe, Qu Keqi, Shi Cai, Huang Zhanhua
Key Laboratory of Bio-based Material Science & Technology, Ministry of Education, and College of Materials Science and Engineering, Northeast Forestry University, Harbin 150040, China; Engineering Research Center of Advanced Wooden Materials, Ministry of Education, Northeast Forestry University, Harbin 150040, China.
Key Laboratory of Bio-based Material Science & Technology, Ministry of Education, and College of Materials Science and Engineering, Northeast Forestry University, Harbin 150040, China; Engineering Research Center of Advanced Wooden Materials, Ministry of Education, Northeast Forestry University, Harbin 150040, China.
Int J Biol Macromol. 2023 Apr 15;234:123699. doi: 10.1016/j.ijbiomac.2023.123699. Epub 2023 Feb 17.
Binder use results in an expansion of the dead volume of the active material and a decline in the active sites, which will lead to a decrease in the electrochemical activity of the electrode. Therefore, the construction of electrode materials without the binder has been the research focus. Here, a novel ternary composite gel electrode without the binder (reduced graphene oxide/sodium alginate/copper cobalt sulfide, rGSC) were designed using a convenient hydrothermal method. Benefiting from the dual-network structure of rGS via the hydrogen bonding between rGO and sodium alginate not only better encapsulates CuCoS with high pseudo-capacitance, but also simplifies the electron transfer path, and reduces the electron transfer resistance, which leads to a remarkable enhanced electrochemical performance. The rGSC electrode exhibits a specific capacitance of up to 1600.25 F g when the scan rate is 10 mV s. The asymmetric supercapacitor was constructed with rGSC and activated carbon as the positive and negative electrode in a 6 M KOH electrolyte. It has a large specific capacitance and high energy/power density (10.7 Wh kg/1329.1 W kg). This work proposes a promising strategy for designing gel electrodes for higher energy density and larger capacitance without the binder.
粘结剂的使用会导致活性材料的死体积增大以及活性位点减少,这将导致电极的电化学活性降低。因此,构建无粘结剂的电极材料一直是研究重点。在此,采用简便的水热法设计了一种新型的无粘结剂三元复合凝胶电极(还原氧化石墨烯/海藻酸钠/铜钴硫化物,rGSC)。得益于rGS的双网络结构,通过rGO与海藻酸钠之间的氢键作用,不仅能更好地包裹具有高赝电容的CuCoS,还简化了电子转移路径,降低了电子转移电阻,从而显著提高了电化学性能。当扫描速率为10 mV s时,rGSC电极的比电容高达1600.25 F g。以rGSC和活性炭作为正负极,在6 M KOH电解液中构建了不对称超级电容器。它具有较大的比电容和高能量/功率密度(10.7 Wh kg/1329.1 W kg)。这项工作为设计无粘结剂、具有更高能量密度和更大电容的凝胶电极提出了一种有前景的策略。