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Lee, Jae Sung
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Low-temperature thermite reaction to form oxygen vacancies in metal-oxide semiconductors A case study of photoelectrochemical cells

Author(s)
Kim, Jeong HunLee, Jin UkZheng, LikaiLi, JunSivula, KevinGratzel, MichaelLee, Jae SungKim, Jinhyun
Issued Date
2025-05
DOI
10.1016/j.chempr.2024.12.006
URI
https://scholarworks.unist.ac.kr/handle/201301/87174
Citation
CHEM, v.11, no.5, pp.102388
Abstract
The formation of oxygen vacancies (Vo) in n-type semiconductors is a key strategy for improving the performance of metal-oxide-based photoanodes. Whereas Vo has traditionally been created by gas-or liquid-phase treatments, here we report a solid-state reduction technique termed the "low-temperature thermite reaction"(LTTR), which is effective for various metal oxides and solid reductants. In the case of ZnFe2O4 (ZFO), the LTTR increases charge-carrier density and bulk charge-separation efficiency by 100-fold and 24-fold, respectively, for ZFO with an Fe reductant relative to pristine ZFO. The photocurrent densities for sacrificial reagent and water oxidation (1.8 and 1.6 mA/cm2 at 1.23 VRHE, respectively) achieved here represent the highest values reported for ZFO photoanodes. Also, a ZFO-lead halide perovskite solar cell tandem water-splitting cell demonstrated an unbiased solar-to-hydrogen efficiency of 1.85%. The LTTR is applicable to large-area (25 cm2) photoanodes under ambient atmosphere. Thus, the LTTR could become a more effective and versatile technique than conventional ones.
Publisher
CELL PRESS
ISSN
2451-9308
Keyword
TRANSPORTPERFORMANCESOLAR HYDROGEN-PRODUCTIONMONOCLINIC BIVO4WATER OXIDATIONPHOTOANODE

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