Probing Photoelectrochemical Hydrogen and Oxygen Evolution at Individual Al:SrTiO<sub>3</sub>/Rh<sub>2–y</sub>Cr<sub>y</sub>O<sub>3</sub> Photocatalyst Particles
Abstract
AbstractParticle‐based photocatalysts for overall water splitting convert solar energy into hydrogen fuel without the use of any photovoltaic devices. As such they have the potential to revolutionize renewable energy production on Earth. While proven efficiencies have reached 1.1%, further improvements of photocatalyst technology depend on a better understanding of energy loss mechanisms on the individual particle level. Here, we conduct the first in operando photoelectrochemical measurements on individual micrometer‐sized Al‐doped SrTiO3/Rh2–yCryO3 photocatalyst particles. We find that the photocatalyst particles behave mainly as water oxidation photoanodes reaching up to 0.5 mA cm−2 at 0.8 V versus RHE and a photovoltage of ∼1.00 V under 4.7 mW cm−2 ultraviolet illumination. This proves that charge separation in the unbiased Al:SrTiO3/Rh2–yCryO3 catalyst is driven by a junction at the n‐semiconductor‐liquid contact. While O2 is detected symmetrically around photocatalyst particles, uneven H2 evolution profiles reflect an irregular Rh2–yCryO3 cocatalyst distribution. Additionally, the H2 evolution activity varies significantly between different photocatalyst particles. This suggests that performance gains are possible by better controlling catalyst composition on the microscale.
Article Details
Authors (6)
Gaukhar Askarova
Department of Chemistry and Biochemistry, Queens College
Chengcan Xiao
Department of Chemistry University of California Davis Davis CA 95616 USA
Shu Wu
Department of Chemistry and Biochemistry
Kim Kisslinger
Frank E. Osterloh
Department of Chemistry
Michael V. Mirkin
Department of Chemistry and Biochemistry