TY - JOUR
T1 - Transition from core-shell to janus segregation pattern in AgPd nanoalloy by Ni doping for the formate oxidation
AU - Wang, Qiao
AU - Chen, Fuyi
AU - Tang, Quan
AU - Guo, Longfei
AU - Gebremariam, Tesfaye Tadesse
AU - Jin, Tao
AU - Liu, Huazhen
AU - Kou, Bo
AU - Li, Zhen
AU - Bian, Weiqi
N1 - Publisher Copyright:
© 2020 Elsevier B.V.
PY - 2020/8/5
Y1 - 2020/8/5
N2 - Developing the nanoalloys with well-designed chemical ordering and understanding the correlation between the chemical ordering and catalytic property remain a challenge, yet represent an effective strategy to improve the performance of the nanoalloys. Herein, three AgPd-based nanoalloys with different composition-segregation types, namely, alloy (mixed-Ag19Pd72Ni9), core-shell (core-shell-Ag40Pd60) and janus (janus-Ag20Pd60Ni20) atomic arrangements, are developed via a successive co-reduction method and used in the formate oxidation reaction (FOR). The janus-Ag20Pd60Ni20 nanoalloy exhibits an electrocatalytic activity of 1.31 A mgPd−1 and remarkable long-term stability, outperforming the commercial Pd/C catalysts. The FOR activity follows the order of janus-Ag20Pd60Ni20 > core-shell-Ag40Pd60 > mixed-Ag19Pd72Ni9 nanoalloys. After galvanic replacement and acid treatment, the obtained galvanic-Ag20Pd60Ni20 and acid-Ag20Pd60Ni20 nanoalloys demonstrate 2.31 and 1.44 times higher mass activity than the janus-Ag20Pd60Ni20 nanoalloy. The improvements in the activity and stability can be attributed to largely increased Pd active sites on the surface of AgPd-based nanoalloys with optimal chemical ordering.
AB - Developing the nanoalloys with well-designed chemical ordering and understanding the correlation between the chemical ordering and catalytic property remain a challenge, yet represent an effective strategy to improve the performance of the nanoalloys. Herein, three AgPd-based nanoalloys with different composition-segregation types, namely, alloy (mixed-Ag19Pd72Ni9), core-shell (core-shell-Ag40Pd60) and janus (janus-Ag20Pd60Ni20) atomic arrangements, are developed via a successive co-reduction method and used in the formate oxidation reaction (FOR). The janus-Ag20Pd60Ni20 nanoalloy exhibits an electrocatalytic activity of 1.31 A mgPd−1 and remarkable long-term stability, outperforming the commercial Pd/C catalysts. The FOR activity follows the order of janus-Ag20Pd60Ni20 > core-shell-Ag40Pd60 > mixed-Ag19Pd72Ni9 nanoalloys. After galvanic replacement and acid treatment, the obtained galvanic-Ag20Pd60Ni20 and acid-Ag20Pd60Ni20 nanoalloys demonstrate 2.31 and 1.44 times higher mass activity than the janus-Ag20Pd60Ni20 nanoalloy. The improvements in the activity and stability can be attributed to largely increased Pd active sites on the surface of AgPd-based nanoalloys with optimal chemical ordering.
KW - AgPd nanoalloy
KW - Chemical ordering
KW - Formate oxidation reaction
KW - Galvanic replacement
KW - Ni doping
UR - http://www.scopus.com/inward/record.url?scp=85081278109&partnerID=8YFLogxK
U2 - 10.1016/j.apcatb.2020.118861
DO - 10.1016/j.apcatb.2020.118861
M3 - 文章
AN - SCOPUS:85081278109
SN - 0926-3373
VL - 270
JO - Applied Catalysis B: Environmental
JF - Applied Catalysis B: Environmental
M1 - 118861
ER -