Qu Keqi, Chen Manhui, Wang Weicong, Yang Shuai, Jing Songjie, Guo Sitong, Tian Jiangyang, Qi Houjuan, Huang Zhanhua
Key Laboratory of Biobased Material Science and Technology, Ministry of Education, College of Material Science and Engineering, Northeast Forestry University, Harbin 150040, China.
Key Laboratory of Biobased Material Science and Technology, Ministry of Education, College of Material Science and Engineering, Northeast Forestry University, Harbin 150040, China.
J Colloid Interface Sci. 2022 Jun 15;616:584-594. doi: 10.1016/j.jcis.2022.02.110. Epub 2022 Feb 23.
Layered double hydroxides (LDHs) often require the use of carbon materials to improve their stability, conductivity, and specific surface area to accommodate new directions in the development of high-performance energy storage materials. Herein, 2D nickel cobalt layered double hydroxide (NCLDH) nanosheets are regulated to form 3D flower-like spheres by fungus bran-derived carbon dots (CDs) via an in situ growth method. The prepared sample (CDs/NCLDH) shows abundant accessible active sites and favorable electrical conductivity, which is aided by strong interactions between CDs and NCLDH. The optimized CDs/NCLDH exhibits significantly enhanced electrochemical performances, including ultrahigh specific capacitance (2100F g at 1 A g) and a great rate capability, which are two times higher than those of the NCLDH electrode. Additionally, the asymmetric supercapacitor device assembled with the CDs/NCLDH positive electrode and the fungus bran-derived activated carbon (FBC) negative electrode achieves a superior energy density of 52.5 Wh kg at an ultrahigh powder density of 750 W kg. With their simple synthesis method and excellent electrochemical performance, the role of the CDs provides new insights for the development of LDHs with improved performance.
层状双氢氧化物(LDHs)通常需要使用碳材料来提高其稳定性、导电性和比表面积,以适应高性能储能材料发展的新方向。在此,通过原位生长法,利用真菌麸皮衍生的碳点(CDs)将二维镍钴层状双氢氧化物(NCLDH)纳米片调控形成三维花状球体。所制备的样品(CDs/NCLDH)显示出丰富的可及活性位点和良好的导电性,这得益于CDs与NCLDH之间的强相互作用。优化后的CDs/NCLDH表现出显著增强的电化学性能,包括超高比电容(在1 A g时为2100 F g)和出色的倍率性能,比NCLDH电极高出两倍。此外,由CDs/NCLDH正极和真菌麸皮衍生的活性炭(FBC)负极组装而成的不对称超级电容器装置在750 W kg的超高功率密度下实现了52.5 Wh kg的优异能量密度。凭借其简单的合成方法和出色的电化学性能,CDs的作用为开发性能改进的LDHs提供了新的见解。