TY - JOUR
T1 - Metal Doped Unconventional Phase IrNi Nanobranches
T2 - Tunable Electrochemical Nitrate Reduction Performance and Pollutants Upcycling
AU - Xiong, Yuecheng
AU - Wang, Yunhao
AU - Tsang, Chi Ching
AU - Zhou, Jingwen
AU - Hao, Fengkun
AU - Liu, Fu
AU - Wang, Juan
AU - Xi, Shibo
AU - Zhao, Jiong
AU - Fan, Zhanxi
PY - 2024/6/18
Y1 - 2024/6/18
N2 - Electrochemical nitrate reduction (NO3RR) provides a new option to abate nitrate contamination with a low carbon footprint. Restricted by competitive hydrogen evolution, achieving satisfied nitrate reduction performance in neutral media is still a challenge, especially for the regulation of this multielectron multiproton reaction. Herein, facile element doping is adopted to tune the catalytic behavior of IrNi alloy nanobranches with an unconventional hexagonal close-packed (hcp) phase toward NO3RR. In particular, the obtained hcp IrNiCu nanobranches favor the ammonia production and suppress byproduct formation in a neutral electrolyte indicated by in situ differential electrochemical mass spectrometry, with a high Faradaic efficiency (FE) of 85.6% and a large yield rate of 1253 μg cm-2 h-1 at −0.4 and −0.6 V (vs reversible hydrogen electrode (RHE)), respectively. In contrast, the resultant hcp IrNiCo nanobranches promote the formation of nitrite, with a peak FE of 33.1% at −0.1 V (vs RHE). Furthermore, a hybrid electrolysis cell consisting of NO3RR and formaldehyde oxidation is constructed, which are both catalyzed by hcp IrNiCu nanobranches. This electrolyzer exhibits lower overpotential and holds the potential to treat polluted air and wastewater simultaneously, shedding light on green chemical production based on contaminate degradation. © 2024 American Chemical Society.
AB - Electrochemical nitrate reduction (NO3RR) provides a new option to abate nitrate contamination with a low carbon footprint. Restricted by competitive hydrogen evolution, achieving satisfied nitrate reduction performance in neutral media is still a challenge, especially for the regulation of this multielectron multiproton reaction. Herein, facile element doping is adopted to tune the catalytic behavior of IrNi alloy nanobranches with an unconventional hexagonal close-packed (hcp) phase toward NO3RR. In particular, the obtained hcp IrNiCu nanobranches favor the ammonia production and suppress byproduct formation in a neutral electrolyte indicated by in situ differential electrochemical mass spectrometry, with a high Faradaic efficiency (FE) of 85.6% and a large yield rate of 1253 μg cm-2 h-1 at −0.4 and −0.6 V (vs reversible hydrogen electrode (RHE)), respectively. In contrast, the resultant hcp IrNiCo nanobranches promote the formation of nitrite, with a peak FE of 33.1% at −0.1 V (vs RHE). Furthermore, a hybrid electrolysis cell consisting of NO3RR and formaldehyde oxidation is constructed, which are both catalyzed by hcp IrNiCu nanobranches. This electrolyzer exhibits lower overpotential and holds the potential to treat polluted air and wastewater simultaneously, shedding light on green chemical production based on contaminate degradation. © 2024 American Chemical Society.
KW - ammonia production
KW - electrocatalytic nitrate reduction
KW - metal atom doping
KW - unconventional phase metal nanomaterials
KW - waste-to-valuable strategy
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UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-85195538850&origin=recordpage
U2 - 10.1021/acs.est.4c04014
DO - 10.1021/acs.est.4c04014
M3 - RGC 21 - Publication in refereed journal
C2 - 38842426
SN - 0013-936X
VL - 58
SP - 10863
EP - 10873
JO - Environmental Science and Technology
JF - Environmental Science and Technology
IS - 24
ER -