TY - JOUR
T1 - Porous Carbon Nanosheets Codoped with Nitrogen and Sulfur for Oxygen Reduction Reaction in Microbial Fuel Cells
AU - Yuan, Heyang
AU - Hou, Yang
AU - Wen, Zhenhai
AU - Guo, Xiaoru
AU - Chen, Junhong
AU - He, Zhen
N1 - Publisher Copyright:
© 2015 American Chemical Society.
PY - 2015/8/26
Y1 - 2015/8/26
N2 - In this work, a simple synthesis strategy has been developed for the preparation of nitrogen- and sulfur-codoped porous carbon nanosheets (N/S-CNS) as a cathode catalyst for microbial fuel cells (MFCs). The as-prepared N/S-CNS showed favorable features for electrochemical energy conversion such as high surface area (1004 m2 g-1), defect structure, and abundant exposure of active sites that arose primarily from porous nanosheet morphology. Benefiting from the unique nanostructure, the resulting nanosheets exhibited effective electrocatalytic activity toward oxygen reduction reaction (ORR). The onset potential of the N/S-CNS in linear-sweep voltammetry was approximately -0.05 V vs Ag/AgCl in neutral phosphate buffer saline. Electrochemical impedance spectroscopy showed that the ohmic and charge-transfer resistance of the codoped catalyst were 1.5 and 14.8 Ω, respectively, both of which were lower than that of platinum/carbon (Pt/C). Furthermore, the electron-transfer number of the N/S-CNS was calculated to be ∼3.5, suggesting that ORR on the catalyst proceeds predominantly through the favorable four-electron pathway. The MFC with N/S-CNS as a cathode catalyst generated current density (6.6 A m-2) comparable to that with Pt/C (7.3 A m-2). The high durability and low price indicate that N/S-CNS can be a competitive catalyst for applications of MFCs. (Figure Presented).
AB - In this work, a simple synthesis strategy has been developed for the preparation of nitrogen- and sulfur-codoped porous carbon nanosheets (N/S-CNS) as a cathode catalyst for microbial fuel cells (MFCs). The as-prepared N/S-CNS showed favorable features for electrochemical energy conversion such as high surface area (1004 m2 g-1), defect structure, and abundant exposure of active sites that arose primarily from porous nanosheet morphology. Benefiting from the unique nanostructure, the resulting nanosheets exhibited effective electrocatalytic activity toward oxygen reduction reaction (ORR). The onset potential of the N/S-CNS in linear-sweep voltammetry was approximately -0.05 V vs Ag/AgCl in neutral phosphate buffer saline. Electrochemical impedance spectroscopy showed that the ohmic and charge-transfer resistance of the codoped catalyst were 1.5 and 14.8 Ω, respectively, both of which were lower than that of platinum/carbon (Pt/C). Furthermore, the electron-transfer number of the N/S-CNS was calculated to be ∼3.5, suggesting that ORR on the catalyst proceeds predominantly through the favorable four-electron pathway. The MFC with N/S-CNS as a cathode catalyst generated current density (6.6 A m-2) comparable to that with Pt/C (7.3 A m-2). The high durability and low price indicate that N/S-CNS can be a competitive catalyst for applications of MFCs. (Figure Presented).
KW - carbon nanosheets
KW - microbial fuel cells
KW - nitrogen doping
KW - oxygen reduction reaction
KW - sulfur doping
UR - https://www.scopus.com/pages/publications/84940375138
U2 - 10.1021/acsami.5b05144
DO - 10.1021/acsami.5b05144
M3 - Article
C2 - 26237336
AN - SCOPUS:84940375138
SN - 1944-8244
VL - 7
SP - 18672
EP - 18678
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 33
ER -