TY - JOUR
T1 - Refining Energy Levels in ReS2 Nanosheets by Low-Valent Transition-Metal Doping for Dual-Boosted Electrochemical Ammonia/Hydrogen Production
AU - Lai, Feili
AU - Chen, Nan
AU - Ye, Xiaobin
AU - He, Guanjie
AU - Zong, Wei
AU - Holt, Katherine B.
AU - Pan, Bicai
AU - Parkin, Ivan P.
AU - Liu, Tianxi
AU - Chen, Renjie
N1 - Publisher Copyright:
© 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2020/3/1
Y1 - 2020/3/1
N2 - Electrocatalytic nitrogen reduction reaction (NRR) and hydrogen evolution reaction (HER) are intriguing approaches to nitrogen fixation and hydrogen production under ambient conditions, given the need to discover efficient and stable catalysts to light up the “green chemistry” future. However, bottlenecks are often found during N2/H2O activation, the very first step of NRR/HER, due to energetic electron injection from the surface of electrocatalysts. It is reported that the bottlenecks for both NRR and HER can be tackled by engineering the energy level via low-valent transition-metal doping, simultaneously, where rhenium disulfide (ReS2) is employed as a model platform to prove the concept. The doped low-valent transition-metal domains (e.g., Fe, Co, Ni, Cu, Zn) in ReS2 provide more active sites for N2/H2O chemisorption and electron transfer, not only weakening the NN/OH bonds for easier dissociation through proton coupling, but also elevating d-band center toward the Fermi level with more electron energy for N2/H2O reduction. As a result, it is found that iron-doped ReS2 nanosheets wrapped nitrogen-doped carbon nanofiber (Fe-ReS2@N-CNF) catalyst exhibits superior electrochemical activity with eightfold higher ammonia production yield of 80.4 µg h−1 mg−1 cat., and lower onset overpotential of 146 mV and Tafel slope of 63 mV dec−1, when comparing with the pristine ReS2.
AB - Electrocatalytic nitrogen reduction reaction (NRR) and hydrogen evolution reaction (HER) are intriguing approaches to nitrogen fixation and hydrogen production under ambient conditions, given the need to discover efficient and stable catalysts to light up the “green chemistry” future. However, bottlenecks are often found during N2/H2O activation, the very first step of NRR/HER, due to energetic electron injection from the surface of electrocatalysts. It is reported that the bottlenecks for both NRR and HER can be tackled by engineering the energy level via low-valent transition-metal doping, simultaneously, where rhenium disulfide (ReS2) is employed as a model platform to prove the concept. The doped low-valent transition-metal domains (e.g., Fe, Co, Ni, Cu, Zn) in ReS2 provide more active sites for N2/H2O chemisorption and electron transfer, not only weakening the NN/OH bonds for easier dissociation through proton coupling, but also elevating d-band center toward the Fermi level with more electron energy for N2/H2O reduction. As a result, it is found that iron-doped ReS2 nanosheets wrapped nitrogen-doped carbon nanofiber (Fe-ReS2@N-CNF) catalyst exhibits superior electrochemical activity with eightfold higher ammonia production yield of 80.4 µg h−1 mg−1 cat., and lower onset overpotential of 146 mV and Tafel slope of 63 mV dec−1, when comparing with the pristine ReS2.
KW - electrocatalysis
KW - nitrogen reduction reaction
KW - rhenium disulfide
KW - transition-metals
UR - http://www.scopus.com/inward/record.url?scp=85078863546&partnerID=8YFLogxK
U2 - 10.1002/adfm.201907376
DO - 10.1002/adfm.201907376
M3 - Article
AN - SCOPUS:85078863546
SN - 1616-301X
VL - 30
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 11
M1 - 1907376
ER -