4 research outputs found
Engineering Surface Passivation and Hole Transport Layer on Hematite Photoanodes Enabling Robust Photoelectrocatalytic Water Oxidation
Regulation of charge transport at the molecular level
is essential
to elucidating the kinetics of junction photoelectrodes across the
heterointerface for photoelectrochemical (PEC) water oxidation. Herein,
an integrated photoanode as the prototype was constructed by use of
a 5,10,15,20-tetrakis(4-carboxyphenyl) porphyrin-cobalt molecule (CoTCPP)
and ZnO on hematite (α-Fe2O3) photoanode.
CoTCPP molecules serve as a typical hole transport layer (HTL), accelerating
the transport of the photogenerated holes to oxygen evolution cocatalysts
(OECs). Meanwhile, ZnO as the surface passivation layer (SPL) can
passivate the interfacial state and reduce the level of electron leakage
from hematite into the electrolyte. After the integration of OECs,
the state-of-the-art α-Fe2O3/ZnO/CoTCPP/OECs
photoanode exhibits a distinguished photocurrent density and excellent
stability in comparison with pristine α-Fe2O3. The simultaneous incorporation of a ZnO and CoTCPP dual
interlayer can effectively modulate the interfacial photoinduced charge
transfer for PEC reaction. This work provides in-depth insights into
interfacial charge transfer across junction electrodes and identifies
the critical roles of solar PEC conversion
BiVO<sub>4</sub>‑Based Heterojunction Photocathode for High-Performance Photoelectrochemical Hydrogen Peroxide Production
Photoelectrochemical (PEC) cells provide a promising
solution for
the synthesis of hydrogen peroxide (H2O2). Herein,
an integrated photocathode of p-type BiVO4 (p-BVO) array
with tetragonal zircon structure coupled with different metal oxide
(MOx, M = Sn, Ti, Ni, and Zn) heterostructure
and NiNC cocatalyst (p-BVO/MOx/NiNC) was
synthesized for the PEC oxygen reduction reaction (ORR) in production
of H2O2. The p-BVO/SnO2/NiNC array
achieves the production rate 65.46 μmol L–1 h–1 of H2O2 with a Faraday
efficiency (FE) of 76.12%. Combined with the H2O2 generation of water oxidation from the n-type Mo-doped BiVO4 (n-Mo:BVO) photoanode, the unbiased photoelectrochemical
cell composed of a p-BVO/SnO2/NiNC photocathode and n-Mo:BVO
photoanode achieves a total FE of 97.67% for H2O2 generation. The large area BiVO4-based tandem cell of
3 × 3 cm2 can reach a total H2O2 production yield of 338.84 μmol L–1. This
work paves the way for the rational design and fabrication of artificial
photosynthetic cells for the production of liquid solar fuel