Перейти к основному содержанию
AkademIndex

Продукты

Для разработчиков

AkademBaseОткрытый API экосистемы
Статья

Cavities-Induced Compressive Strain in Unique Nanotubes Boosts the C1 Pathway of Ethanol Oxidation Electrocatalysis

Zhonghong XiaInstitute for Sustainable Energy, Department of Chemistry, College of SciencesRenqin YuInstitute for Sustainable Energy, Department of Chemistry, College of SciencesYan WangSchool of Environmental & Chemical EngineeringKaiyang XuSongshan Lake Materials Laboratory (SLAB)Kamel EidGas Processing Center, College of EngineeringYifan ZhangSchool of Environmental & Chemical EngineeringJia HeSchool of Chemistry and Chemical EngineeringFanghua NingInstitute for Sustainable Energy, Department of Chemistry, College of SciencesLifeng LiuSongshan Lake Materials Laboratory (SLAB)Jiujun ZhangInstitute for Sustainable Energy, Department of Chemistry, College of SciencesHuawei YangLudong UniversityHongbin ZhaoInstitute for Sustainable Energy, Department of Chemistry, College of SciencesDengsong ZhangInstitute for Sustainable Energy, Department of Chemistry, College of Sciences
2025en
ABI

Аннотация

Engineering structural defects is beneficial for electrocatalytic performances. Herein, a class of acid-etched PtNiRh nanotubes with abundant structural defects around cavities were constructed. Modulated electronic and coordination structures closely associated with structural defects boost the ethanol oxidation reaction (EOR) activity and selectivity. The optimized PtNiRh-E-H nanotubes exhibit an EOR mass and specific activity of 1.81 A mgPt–1 and 3.38 mA cm–2, respectively. A high retention at 1.80 A mgPt–1 after a chronoamperometric test of 10000 s was achieved by PtNiRh-E-H nanotubes. Moreover, the PtNiRh-E-H nanotubes featuring compressive lattice strain and lower-lying d band center display a strong inclination for the C1 pathway, as evidenced by a higher linearly bonded CO band intensity and lower intensity of adsorbed acetate across the applied potentials using attenuated total-reflection surface-enhanced infrared absorption spectroscopy (ATR-SEIRAS). Also, the attenuated CO adsorption and accelerated CO oxidative desorption by OH species led to superior C1 selectivity of the PtNiRh-E-H nanotubes. Differential mass spectrometry (DEMS) together with ATR-SEIRAS provides explicit evidence of catalytic pathway as CH3CH2OH → CH3CH2OHads → ··· → CH3CHO → CH3CO → CH3 + CO → 2CO2. The work represents a feasible strategy for alcohol oxidation catalysis, wherein acid etching exposes significantly more structural defects and brings about an optimal electronic structure and lattice strain.

Перевод пока недоступен

Идентификаторы

Цитирования и источники

Цитирований: 3Использованных источников: 0