High-efficiency unbiased water splitting with photoanodes harnessing polycarbazole hole transport layers
The construction of uniform heterojunctions for effective hole transport in a nanoporous BiVO 4 photoanode is highly challenging, despite its promise for unbiased photoelectrochemical (PEC) water splitting. Herein, we grew a nanoscale conjugated polycarbazole framework (CPF-TCB) on nanoporous Mo:BiV...
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Veröffentlicht in: | Energy & environmental science 2024-04, Vol.17 (7), p.2541-2553 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | The construction of uniform heterojunctions for effective hole transport in a nanoporous BiVO
4
photoanode is highly challenging, despite its promise for unbiased photoelectrochemical (PEC) water splitting. Herein, we grew a nanoscale conjugated polycarbazole framework (CPF-TCB) on nanoporous Mo:BiVO
4
and exhaustively assessed its hole extraction capability. Type II band alignment in the CPF-TCB/Mo:BiVO
4
heterostructure enabled effective hole transport by suppressing charge recombination, enhancing both the fill factor and stability of the photoanode after loading a cocatalyst. The NiFeCoO
x
/CPF-TCB/Mo:BiVO
4
photoanode generates a superlative water oxidation photocurrent density of 6.66 mA cm
−2
at 1.23 V
versus
the reversible hydrogen electrode. By combining the photoanode with a perovskite photocathode and a perovskite/Si solar cell, two types of PEC tandem devices exhibit solar-to-hydrogen conversion efficiencies of 6.75% and 9.02%, which are the topmost records under tandem illumination mode. This work provides a significant step for designing high-performance organic-inorganic hybrid photoelectrodes for solar hydrogen production.
The conformal heterojunction of a competent hole transport layer onto the nanoporous BiVO
4
photoanode is highly challenging, despite its promise for unbiased photoelectrochemical (PEC) water splitting. |
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ISSN: | 1754-5692 1754-5706 |
DOI: | 10.1039/d3ee03353h |