Effects of Oxygen Functional Groups on Electrochemical Performance of Carbon Materials for Dechlorination of 1,2-Dichloroethane to Ethylene

2022 ◽  
pp. 134547
Author(s):  
Guoqiang Gan ◽  
Shiying Fan ◽  
Xinyong Li ◽  
Liang Wang ◽  
Zhifan Yin ◽  
...  
Carbon ◽  
2021 ◽  
Vol 171 ◽  
pp. 980-981
Author(s):  
Xi-ran Li ◽  
Yang-hui Jiang ◽  
Pei-zhi Wang ◽  
Yan Mo ◽  
Wen-de Lai ◽  
...  

2020 ◽  
Vol 35 (3) ◽  
pp. 232-243 ◽  
Author(s):  
Xi-ran Li ◽  
Yang-hui Jiang ◽  
Pei-zhi Wang ◽  
Yan Mo ◽  
Wen-de Lai ◽  
...  

RSC Advances ◽  
2020 ◽  
Vol 10 (58) ◽  
pp. 35295-35301
Author(s):  
Yaxiong Zhang ◽  
Ying Liu ◽  
Yunfei Bai ◽  
Yupeng Liu ◽  
Erqing Xie

Carbon materials with effective oxygen functional groups as positive and negative electrodes and their special energy storage mechanism.


Energies ◽  
2021 ◽  
Vol 14 (14) ◽  
pp. 4196
Author(s):  
Ji Hyeon Lee ◽  
Hyun Wook Jung ◽  
In Soo Kim ◽  
Min Park ◽  
Hyung-Seok Kim

In this study, carbon nanotubes (CNTs) were used as cathodes for lithium–oxygen (Li–O2) batteries to confirm the effect of oxygen functional groups present on the CNT surface on Li–O2 battery performance. A coating technology using atomic layer deposition was introduced to remove the oxygen functional groups present on the CNT surface, and ZnO without catalytic properties was adopted as a coating material to exclude the effect of catalytic reaction. An acid treatment process (H2SO4:HNO3 = 3:1) was conducted to increase the oxygen functional groups of the existing CNTs. Therefore, it was confirmed that ZnO@CNT with reduced oxygen functional groups lowered the charging overpotential by approximately 230 mV and increased the yield of Li2O2, a discharge product, by approximately 13%. Hence, we can conclude that the ZnO@CNT is suitable as a cathode material for Li–O2 batteries.


Materials ◽  
2019 ◽  
Vol 12 (10) ◽  
pp. 1675 ◽  
Author(s):  
Suhong Ren ◽  
Liping Deng ◽  
Bo Zhang ◽  
Yafang Lei ◽  
Haiqing Ren ◽  
...  

Hierarchical porous carbon materials made from cork were fabricated using a facile and green method combined with air activation, without any templates and chemical agents. The influence of air activation on the texture and other surface characteristics of the carbon materials were evaluated by various characterization techniques. Results indicate that air oxidation can effectively improve the surface area and the hierarchical porous structure of carbon materials, as well as increase the number of oxygen-containing functional groups on the carbon surface. The specific surface area and the pore volume of the carbon material activated by air at 450 °C (C800-M450) can reach 580 m2/g and 0.379 cm3/g, respectively. These values are considerably higher than those for the non-activated material (C800, 376 m2/g, 0.201 cm3/g). The contents of the functional groups (C–O, C=O and O–H) increased with rising activation temperature. After air activation, the adsorption capacity of the carbon materials for methylene blue (MB) and methyl orange (MO) was increased from 7.7 and 6.4 mg/g for C800 to 312.5 and 97.1 mg/g for C800-M450, respectively. The excellent dye removal of the materials suggests that the porous carbon obtained from biomass can be potentially used for wastewater treatment.


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