Achieving Highly Efficient, Selective, and Stable CO2 Reduction on Nitrogen-Doped Carbon Nanotubes


Autoria(s): Wu, Jingjie; Yadav, Ram Manohar; Liu, Mingjie; Sharma, Pranav P; Tiwary, Chandra Sekhar; Ma, Lulu; Zou, Xiaolong; Zhou, Xiao-Dong; Yakobson, Boris I; Lou, Jun; Ajayan, Pulickel M
Data(s)

2015

Resumo

The challenge in the electrosynthesis of fuels from CO2 is to achieve durable and active performance with cost-effective catalysts. Here, we report that carbon nanotubes (CNTs), doped with nitrogen to form resident electron-rich defects, can act as highly efficient and, more importantly, stable catalysts for the conversion of CO2 to CO. The unprecedented overpotential (-0.18 V) and selectivity (80%) observed on nitrogen-doped CNTs (NCNTs) are attributed to their unique features to facilitate the reaction, including (i) high electrical conductivity, (ii) preferable catalytic sites (pyridinic N defects), and (iii) low free energy for CO2 activation and high barrier for hydrogen evolution. Indeed, DFT calculations show a low free energy barrier for the potential-limiting step to form key intermediate COOH as well as strong binding energy of adsorbed CON and weak binding energy for the adsorbed CO. The highest selective site toward CO production is pyridinic N, and the NCNT-based electrodes exhibit no degradation over 10 h of continuous operation, suggesting the structural stability of the electrode.

Formato

application/pdf

Identificador

http://eprints.iisc.ernet.in/51826/1/ACS_Nano_9-5_5364_2015.pdf

Wu, Jingjie and Yadav, Ram Manohar and Liu, Mingjie and Sharma, Pranav P and Tiwary, Chandra Sekhar and Ma, Lulu and Zou, Xiaolong and Zhou, Xiao-Dong and Yakobson, Boris I and Lou, Jun and Ajayan, Pulickel M (2015) Achieving Highly Efficient, Selective, and Stable CO2 Reduction on Nitrogen-Doped Carbon Nanotubes. In: ACS NANO, 9 (5). pp. 5364-5371.

Publicador

AMER CHEMICAL SOC

Relação

http://dx.doi.org/ 10.1021/acsnano.5b01079

http://eprints.iisc.ernet.in/51826/

Palavras-Chave #Materials Engineering (formerly Metallurgy)
Tipo

Journal Article

PeerReviewed