TY - JOUR
T1 - Ultrathin Pd3Pt1Rh0.1 Nanorings with Strong C−C Bond Breaking Ability for the Ethanol Oxidation Reaction
AU - Tian, Hao
AU - Zhu, Runxi
AU - Deng, Peilin
AU - Li, Jing
AU - Huang, Wei
AU - Chen, Qi
AU - Su, Ya Qiong
AU - Jia, Chunman
AU - Liu, Zhongxin
AU - Shen, Yijun
AU - Tian, Xinlong
N1 - Publisher Copyright:
© 2022 Wiley-VCH GmbH.
PY - 2022/10/6
Y1 - 2022/10/6
N2 - Ethanol as a fuel for direct ethanol fuel cells (DEFCs) has the advantages of being highly energetic, environmentally friendly, and low−cost, while the slow anodic ethanol oxidation reaction (EOR), intermediate poisoning effect, and incomplete oxidation of ethanol became obstacles to the development of DEFCs. Herein, a 2D ternary cyclic Pd3Pt1Rh0.1 nanorings (NRs) catalyst with efficient EOR performance is prepared via a facile one−pot solvothermal approach, and systematic studies are carried out to reveal the mechanisms of the enhanced performance and C−C bond selectivity. In particular, the optimized catalyst exhibits impressive mass activity, stability, toxicity resistance, and C−C bond cleavage ability. It's proposed that the considerable performance is attributed to the unique hollow structure, providing abundant active sites. The high toxicity resistance is not only attributed to the electronic modulation of the catalyst material by Rh atoms, but also depends on the excellent water activation properties of Rh, which contribute to the removal of intermediates, such as CO. In addition, the density functional theory calculations showed that the introduction of Rh significantly enhances the C−C bond cleavage ability of the catalyst, further improving the EOR activity.
AB - Ethanol as a fuel for direct ethanol fuel cells (DEFCs) has the advantages of being highly energetic, environmentally friendly, and low−cost, while the slow anodic ethanol oxidation reaction (EOR), intermediate poisoning effect, and incomplete oxidation of ethanol became obstacles to the development of DEFCs. Herein, a 2D ternary cyclic Pd3Pt1Rh0.1 nanorings (NRs) catalyst with efficient EOR performance is prepared via a facile one−pot solvothermal approach, and systematic studies are carried out to reveal the mechanisms of the enhanced performance and C−C bond selectivity. In particular, the optimized catalyst exhibits impressive mass activity, stability, toxicity resistance, and C−C bond cleavage ability. It's proposed that the considerable performance is attributed to the unique hollow structure, providing abundant active sites. The high toxicity resistance is not only attributed to the electronic modulation of the catalyst material by Rh atoms, but also depends on the excellent water activation properties of Rh, which contribute to the removal of intermediates, such as CO. In addition, the density functional theory calculations showed that the introduction of Rh significantly enhances the C−C bond cleavage ability of the catalyst, further improving the EOR activity.
KW - C−C bond cleavage
KW - PdPtRh nanorings
KW - ethanol oxidation reaction
KW - selectivity
KW - toxicity resistant
UR - https://www.scopus.com/pages/publications/85135908667
U2 - 10.1002/smll.202203506
DO - 10.1002/smll.202203506
M3 - 文章
C2 - 35980998
AN - SCOPUS:85135908667
SN - 1613-6810
VL - 18
JO - Small
JF - Small
IS - 40
M1 - 2203506
ER -