| Literature DB >> 30637898 |
Jiawei Zhu1, Yupeng Huang1, Wencen Mei1, Chenyang Zhao1, Chengtian Zhang1, Jian Zhang2, Ibrahim Saana Amiinu1, Shichun Mu1.
Abstract
Theoretical calculations reveal that intrinsic pentagons in the basal plane can contribute to the local electronic redistribution and the contraction of band gap, making the carbon matrix possess superior binding affinity and electrochemical reactivity. To experimentally verify this, a pentagon-defect-rich carbon nanomaterial was constructed by means of in situ etching of fullerene molecules (C60 ). The electrochemical tests show that, relative to hexagons, such a carbon-based material with abundant intrinsic pentagon defects makes much greater contribution to the electrocatalytic oxygen reduction activity and electric double layer capacitance. It shows a four-electron-reaction mechanism similar to commercial Pt/C and other transition-metal-based catalysts, and a higher specific capacitance than many reported metal-free carbon materials. These results show the influence of intrinsic pentagon defects for developing carbon-based nanomaterials toward energy conversion and storage devices.Entities:
Keywords: carbon materials; oxygen reduction; pentagon defects; supercapacitors; zinc-air batteries
Year: 2019 PMID: 30637898 DOI: 10.1002/anie.201813805
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336