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李箐

教授    博士生导师    硕士生导师

个人信息 更多+
  • 教师英文名称: Qing Li
  • 性别: 男
  • 在职信息: 在职
  • 所在单位: 材料科学与工程学院
  • 学历: 研究生(博士)毕业
  • 学位: 理学博士学位

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论文成果

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Single-atom Co dispersed on polyoxometalate derivatives confined in bamboo-like carbon nanotubes enabling efficient dual-site lattice oxygen mediated oxygen evolution electrocatalysis for acidic water electrolyzers

发布时间:2024-12-29
点击次数:
论文类型:
Research Article
第一作者:
Liu,Jianyun
通讯作者:
Wang,Tanyuan,Li,Qing
合写作者:
Huang,Yunhui,Shen,Yue,Sun,Hao,Cai,Zhao,Wang,Shiyu,Liu,Shuxia,Liao,Mengyi,Lin,Zijie
发表刊物:
Energy & Environmental Science
所属单位:
华中科技大学
刊物所在地:
英国
文献类型:
Article
卷号:
17
期号:
9
页面范围:
3088-3098
ISSN号:
1754-5706
关键字:
Electronic-Structure; Oxidation; Catalyst; Spectroscopy
DOI码:
10.1039/D4EE00173G
发表时间:
2024-05-27
影响因子:
32.4
摘要:
The development of efficient and durable earth-abundant electrocatalysts for the acidic oxygen evolution reaction (OER) is crucial for the large-scale application of proton exchange membrane water electrolyzers (PEMWEs). Here, we report a novel amorphous Mo–Ce oxide supported single-atom Co (CoSA-MoCeOx) encapsulated in bamboo-like carbon nanotubes (BCTs) catalysts for the acidic OER. Operando X-ray absorption spectroscopy confirms that the Mo–Ce oxide can promote the transformation of Co2+ sites into Co3+–O sites with lower coordination number and abundant oxygen vacancies at a low voltage, leading to a dual-metal-site lattice oxygen-mediated (LOM) pathway with fast OER kinetics. Moreover, the confinement effect of BCTs on CoSA-MoCeOx can reduce the direct contact between the catalyst and the acid, thus improving its corrosion resistance. The optimized catalyst exhibits a low overpotential of 239 mV for the OER at 10 mA cm−2 in 0.5 M H2SO4 and maintains exceptional stability for more than 60 hours in PEMWEs, representing one of the best non-noble metal catalysts. Density functional theory calculations show that the strong interaction between single-atom Co sites and Mo–Ce oxide reduces the adsorption energy barrier of the LOM pathway from 1.60 eV to 1.08 eV, and inhibits the dissolution of the support with the increased vacancy formation energy of Mo, thus improving the OER activity and stability of the catalyst in acid.