TY - JOUR
T1 - Hierarchically porous nitrogen-doped carbon derived from the activation of agriculture waste by potassium hydroxide and urea for high-performance supercapacitors
AU - Zou, Kaixiang
AU - Deng, Yuanfu
AU - Chen, Juping
AU - Qian, Yunqian
AU - Yang, Yuewang
AU - Li, Yingwei
AU - Chen, Guohua
N1 - Publisher Copyright:
© 2018 Elsevier B.V.
PY - 2018/2/28
Y1 - 2018/2/28
N2 - Nitrogen-doped carbon with an ultra-high specific surface area and a hierarchically interconnected porous structure is synthesized in large scale from a green route, that is, the activation of bagasse via a one-step method using KOH and urea. KOH and urea play a synergistic effect for the enhancement of the specific surface area and the modification of pore size of the as-prepared material. Benefiting from the multiple synergistic roles originated from an ultra-high specific area (2905.4 m2 g−1), a high porous volume (2.05 mL g−1 with 75.6 vol% micropores, which is an ideal proportion of micropores for obtaining high specific capacitance), a suitable nitrogen content (2.63 wt%), and partial graphitization, the hierarchically interconnected porous N-doped carbon exhibits an excellent electrochemical performance with a high specific capacitance (350.8, 301.9, and 259.5 F g−1 at 1.0 A g−1 in acidic, alkaline, and neutral electrolytes, respectively), superior rate capability and excellent cycling stability (almost no capacitance loss up to 5000 cycles). Furthermore, the symmetric device assembled by this material achieves high energy densities of 39.1 and 23.5 Wh kg−1 at power densities of 1.0 and 20 kW kg−1, respectively, and exhibits an excellent long-term cycling stability (with capacitance retention above 95.0% after 10 000 cycles).
AB - Nitrogen-doped carbon with an ultra-high specific surface area and a hierarchically interconnected porous structure is synthesized in large scale from a green route, that is, the activation of bagasse via a one-step method using KOH and urea. KOH and urea play a synergistic effect for the enhancement of the specific surface area and the modification of pore size of the as-prepared material. Benefiting from the multiple synergistic roles originated from an ultra-high specific area (2905.4 m2 g−1), a high porous volume (2.05 mL g−1 with 75.6 vol% micropores, which is an ideal proportion of micropores for obtaining high specific capacitance), a suitable nitrogen content (2.63 wt%), and partial graphitization, the hierarchically interconnected porous N-doped carbon exhibits an excellent electrochemical performance with a high specific capacitance (350.8, 301.9, and 259.5 F g−1 at 1.0 A g−1 in acidic, alkaline, and neutral electrolytes, respectively), superior rate capability and excellent cycling stability (almost no capacitance loss up to 5000 cycles). Furthermore, the symmetric device assembled by this material achieves high energy densities of 39.1 and 23.5 Wh kg−1 at power densities of 1.0 and 20 kW kg−1, respectively, and exhibits an excellent long-term cycling stability (with capacitance retention above 95.0% after 10 000 cycles).
KW - Activation
KW - Biomass waste
KW - Hierarchically porous structure
KW - Nitrogen-doped carbon
KW - Supercapcitors
UR - https://www.webofscience.com/wos/woscc/full-record/WOS:000427316300067
UR - https://www.scopus.com/pages/publications/85040041792
U2 - 10.1016/j.jpowsour.2017.12.081
DO - 10.1016/j.jpowsour.2017.12.081
M3 - Journal Article
SN - 0378-7753
VL - 378
SP - 579
EP - 588
JO - Journal of Power Sources
JF - Journal of Power Sources
ER -