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Efficient separation of photoexcited carriers in a g-C3N4-decorated WO3nanowire array heterojunction as the cathode of a rechargeable Li-O2battery

  • Hairong Xue
  • , Tao Wang
  • , Yaya Feng
  • , Hao Gong
  • , Xiaoli Fan
  • , Bin Gao
  • , Yulong Kong
  • , Cheng Jiang
  • , Songtao Zhang
  • , Xianli Huang
  • , Jianping He
  • Nanjing University of Aeronautics and Astronautics
  • Yangzhou University

科研成果: 期刊稿件文章同行评审

47 引用 (Scopus)

摘要

Utilization of solar energy is very important for alleviating the global energy crisis; however, solar-to-electric energy conversion in a compact battery is a great challenge. High charging overpotential of conventional aprotic Li-O2 batteries still restricts their practical application. Herein, we propose a photo-involved rechargeable Li-O2 battery to not only realize direct solar-to-electric energy conversion/storage but also address the overpotential issue. In this photo-involved battery system, the g-C3N4-decorated WO3 nanowire array (WO3@g-C3N4 NWA) heterojunction semiconductor is used as both the photoelectrode and oxygen electrode. Upon charging under visible-light irradiation, the photoexcited holes and electrons are in situ generated on the WO3@g-C3N4 NWA heterojunction cathode. The fabrication of the heterojunction can distinctly reduce the recombination rate between electrons and holes, while photon-generated carriers are effectively and quickly separated and then migrate under a large current density. The discharge product (Li2O2) can be oxidized to O2 and Li+ with a reduced charging voltage (3.69 V) by the abundant photoexcited holes, leading to high energy efficiency, good cycling stability and excellent rate capability. This newly photo-involved reaction scheme could open new avenues toward the design of advanced solar-to-electric energy conversion and storage systems.

源语言英语
页(从-至)18742-18749
页数8
期刊Nanoscale
12
36
DOI
出版状态已出版 - 28 9月 2020
已对外发布

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