TY - JOUR
T1 - Biomass-derived multi-heteroatom-doped carbon materials for high-performance solid-state symmetric supercapacitors with superior long-term cycling stability
AU - Yang, Liu
AU - Wang, Jiansen
AU - Wang, Shihao
AU - Guan, Xiaohui
AU - Guan, Xin
AU - Wang, Guangsheng
N1 - Publisher Copyright:
© 2020, Springer-Verlag GmbH Germany, part of Springer Nature.
PY - 2020/8/1
Y1 - 2020/8/1
N2 - In order to fabricate high-performance supercapacitors with desirable energy density and excellent cycling stability, this work aimed to synthesize biomass-derived carbon materials with great electrochemical performance, especially with superior long-term cycling stability, via a facile and simple process. Herein, we have fabricated three kinds of biomass-derived multi-heteroatom-doped carbon materials, using laver, soybean milk and soybean milk (Ag+) as the precursors, labeled as LC, SC and Ag-SC, respectively. The three heteroatom-doped carbon materials possessed extremely high cycling performance; after cycling for 50,000 times, the specific capacitances of LC and SC could maintain 119.8% and 96.0%, and the specific capacitance of Ag-SC could maintain 131.1% after cycling for 40,000 times. Additionally, the energy densities of the corresponding solid-state symmetric supercapacitors were 9.5, 6.2 and 6.9 Wh kg−1 at the power density of about 900 W kg−1, respectively, and the specific capacitances could retain 141.5%, 128.9% and 102.2% after 50,000 cycles.
AB - In order to fabricate high-performance supercapacitors with desirable energy density and excellent cycling stability, this work aimed to synthesize biomass-derived carbon materials with great electrochemical performance, especially with superior long-term cycling stability, via a facile and simple process. Herein, we have fabricated three kinds of biomass-derived multi-heteroatom-doped carbon materials, using laver, soybean milk and soybean milk (Ag+) as the precursors, labeled as LC, SC and Ag-SC, respectively. The three heteroatom-doped carbon materials possessed extremely high cycling performance; after cycling for 50,000 times, the specific capacitances of LC and SC could maintain 119.8% and 96.0%, and the specific capacitance of Ag-SC could maintain 131.1% after cycling for 40,000 times. Additionally, the energy densities of the corresponding solid-state symmetric supercapacitors were 9.5, 6.2 and 6.9 Wh kg−1 at the power density of about 900 W kg−1, respectively, and the specific capacitances could retain 141.5%, 128.9% and 102.2% after 50,000 cycles.
KW - Ag-nanoparticle-decorated carbon material
KW - Great energy density
KW - Multi-heteroatom-doped carbon materials
KW - Solid-state symmetric supercapacitor
KW - Superior long-term cycling stability
UR - https://www.scopus.com/pages/publications/85084753399
U2 - 10.1007/s11581-020-03556-y
DO - 10.1007/s11581-020-03556-y
M3 - 文章
AN - SCOPUS:85084753399
SN - 0947-7047
VL - 26
SP - 4141
EP - 4151
JO - Ionics
JF - Ionics
IS - 8
ER -