| Literature DB >> 29726038 |
Qiheng Li1, Wenxing Chen1, Hai Xiao1, Yue Gong2, Zhi Li1, Lirong Zheng3, Xusheng Zheng4, Wensheng Yan4, Weng-Chon Cheong1, Rongan Shen1, Ninghua Fu1, Lin Gu2, Zhongbin Zhuang5, Chen Chen1, Dingsheng Wang1, Qing Peng1, Jun Li1, Yadong Li1.
Abstract
Heteroatom-doped Fe-NC catalyst has emerged as one of the most promising candidates to replace noble metal-based catalysts for highly efficient oxygen reduction reaction (ORR). However, delicate controls over their structure parameters to optimize the catalytic efficiency and molecular-level understandings of the catalytic mechanism are still challenging. Herein, a novel pyrrole-thiophene copolymer pyrolysis strategy to synthesize Fe-isolated single atoms on sulfur and nitrogen-codoped carbon (Fe-ISA/SNC) with controllable S, N doping is rationally designed. The catalytic efficiency of Fe-ISA/SNC shows a volcano-type curve with the increase of sulfur doping. The optimized Fe-ISA/SNC exhibits a half-wave potential of 0.896 V (vs reversible hydrogen electrode (RHE)), which is more positive than those of Fe-isolated single atoms on nitrogen codoped carbon (Fe-ISA/NC, 0.839 V), commercial Pt/C (0.841 V), and most reported nonprecious metal catalysts. Fe-ISA/SNC is methanol tolerable and shows negligible activity decay in alkaline condition during 15 000 voltage cycles. X-ray absorption fine structure analysis and density functional theory calculations reveal that the incorporated sulfur engineers the charges on N atoms surrounding the Fe reactive center. The enriched charge facilitates the rate-limiting reductive release of OH* and therefore improved the overall ORR efficiency.Entities:
Keywords: Fe-isolated single atoms; copolymer pyrolysis; oxygen reduction reaction; sulfur-nitrogen codoped carbon
Year: 2018 PMID: 29726038 DOI: 10.1002/adma.201800588
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849