@article{692531b0a1bc4b4eb99e002b38f99d16,
title = "Renewable and metal-free carbon nanofibre catalysts for carbon dioxide reduction",
abstract = "The development of an efficient catalyst system for the electrochemical reduction of carbon dioxide into energy-rich products is a major research topic. Here we report the catalytic ability of polyacrylonitrile-based heteroatomic carbon nanofibres for carbon dioxide reduction into carbon monoxide, via a metal-free, renewable and cost-effective route. The carbon nanofibre catalyst exhibits negligible overpotential (0.17 V) for carbon dioxide reduction and more than an order of magnitude higher current density compared with the silver catalyst under similar experimental conditions. The carbon dioxide reduction ability of carbon nanofibres is attributed to the reduced carbons rather than to electronegative nitrogen atoms. The superior performance is credited to the nanofibrillar structure and high binding energy of key intermediates to the carbon nanofibre surfaces. The finding may lead to a new generation of metal-free and non-precious catalysts with much greater efficiency than the existing noble metal catalysts.",
author = "Bijandra Kumar and Mohammad Asadi and Davide Pisasale and Suman Sinha-Ray and Rosen, {Brian A.} and Richard Haasch and Jeremiah Abiade and Yarin, {Alexander L.} and Amin Salehi-Khojin",
note = "Funding Information: This work was supported in part by University of Illinois at Chicago. This work was carried out in part in the Frederick Seitz Materials Research Laboratory Central Facilities, University of Illinois.",
year = "2013",
month = dec,
day = "2",
doi = "10.1038/ncomms3819",
language = "אנגלית",
volume = "4",
journal = "Nature Communications",
issn = "2041-1723",
publisher = "Nature Research",
}