TY - JOUR
T1 - Coordination-in-pipe engineering of Pt-based intermetallic compounds with nanometer to angstrom precision
AU - Hu, Shouyao
AU - Gong, Jiaxin
AU - Tao, Yu
AU - Ma, Runze
AU - Guan, Jianping
AU - Liu, Xu
AU - Hu, Jinhua
AU - Yan, Jun
AU - Wang, Shibin
AU - Zhang, Zedong
AU - Liang, Xiao
AU - Zhuang, Zechao
AU - Han, Yunhu
AU - Zheng, Xusheng
AU - Yan, Wensheng
AU - Chen, Chengjin
AU - Zhu, Wei
AU - Wang, Dingsheng
AU - Xiong, Yu
N1 - Publisher Copyright:
© 2025 The Royal Society of Chemistry.
PY - 2025
Y1 - 2025
N2 - The simultaneous regulation of particle size, surface coordinated environment and composition for Pt-based intermetallic compound (Pt-IMC) nanoparticles to manipulate their reactivity for energy storage is of great importance. Herein, we report a general synthetic method for Pt-IMCs using SBA-15 for coordination-in-pipe engineering. The particle size can be regulated to 3-9 nm by carrying out the coordination in pipes with different diameters and the coordination number of the interface metal atoms can be adjusted by altering the N source. Moreover, this strategy can also be expanded to the synthesis of Pt-IMCs with the majority of fourth period transition metals (Ti, V, Cr, Mn, Fe, Co, Ni, Cu, Zn). The Pt3Co IMC using 1,10-phenanthroline as the nitrogen source (Pt3Co@CN) shows the highest catalytic performance in the methanol oxidation reaction (MOR; 2.19 A mgPt−1) among the investigated nitrogen sources. The high chemical states of surface Pt and Co, affected by the nitrogen coordination number at the angstrom scale, facilitate electron accumulation on active sites, reduce the activation energy of the rate-determining step and enhance the catalytic performance of Pt-IMCs in the MOR.
AB - The simultaneous regulation of particle size, surface coordinated environment and composition for Pt-based intermetallic compound (Pt-IMC) nanoparticles to manipulate their reactivity for energy storage is of great importance. Herein, we report a general synthetic method for Pt-IMCs using SBA-15 for coordination-in-pipe engineering. The particle size can be regulated to 3-9 nm by carrying out the coordination in pipes with different diameters and the coordination number of the interface metal atoms can be adjusted by altering the N source. Moreover, this strategy can also be expanded to the synthesis of Pt-IMCs with the majority of fourth period transition metals (Ti, V, Cr, Mn, Fe, Co, Ni, Cu, Zn). The Pt3Co IMC using 1,10-phenanthroline as the nitrogen source (Pt3Co@CN) shows the highest catalytic performance in the methanol oxidation reaction (MOR; 2.19 A mgPt−1) among the investigated nitrogen sources. The high chemical states of surface Pt and Co, affected by the nitrogen coordination number at the angstrom scale, facilitate electron accumulation on active sites, reduce the activation energy of the rate-determining step and enhance the catalytic performance of Pt-IMCs in the MOR.
UR - http://www.scopus.com/inward/record.url?scp=85217093799&partnerID=8YFLogxK
U2 - 10.1039/d4sc07905a
DO - 10.1039/d4sc07905a
M3 - 文章
AN - SCOPUS:85217093799
SN - 2041-6520
JO - Chemical Science
JF - Chemical Science
ER -