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Oxygen vacancy engineering and redox coupling-driven enhancement of extended wavelength light absorption and energy storage in Ca(OH)2–Sr0.4Co2.6O4via photothermal dehydration

  • Lin Zhu
  • , Rui Min Hao
  • , Ti Jian Du
  • , Cheng Hui Liu
  • , Zhi Bin Xu
  • , Qin Pei Wu*
  • *此作品的通讯作者
  • Beijing Institute of Technology
  • Ltd

科研成果: 期刊稿件文章同行评审

摘要

Photothermal efficiency is predominantly governed by efficient near-infrared (NIR) light harvesting through surface plasmon resonance (SPR) absorption mechanisms. However, current methodologies for achieving robust absorption of long-wavelength radiation remain fundamentally limited. Herein, we pioneer the synergistic interplay between oxygen vacancies and redox activity as a novel strategy to substantially enhance free-carrier concentration, contract bandgaps, improve NIR light absorption capabilities, elevate photothermal temperatures, and intensify photocurrent. Through strategic substitution of Co2+ with larger Sr2+ ions within the Co3O4 lattice, we synthesize Sr0.4Co2.6O4 nanoparticles exhibiting exceptional oxygen vacancy concentrations (52%), which simultaneously activate abundant redox reactions and exhibit 1.63-fold enhancement in absorption efficiency across vis-NIR light. This material achieves an extraordinarily high free-carrier density of 1.2 × 1021 cm−3, establishing new fundamental understanding in atomic-level absorber design and oxygen-vacancy-mediated light-harvesting mechanism. Furthermore, this multifunctional material demonstrates substantial photothermal performance enhancement, achieving 4.8-fold improvement in dehydration conversion efficiency, 3.4-fold acceleration of dehydration reaction kinetics, and 37.5-fold increased stability of thermal charge and discharge cycles in Ca(OH)2–Sr0.4Co2.6O4 systems.

源语言英语
页(从-至)211-225
页数15
期刊EES Solar
2
1
DOI
出版状态已出版 - 1 2月 2026
已对外发布

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