Two Artificial Leaf Architectures for Solar Formate Production From CO <sub>2</sub> and H <sub>2</sub> O
Abstract
ABSTRACT Sunlight‐powered artificial leaves for the production of formate from CO 2 are an attractive route to solar fuels, yet existing solar formate devices remain low in performance, and their architecture and material choices are underexplored. Herein, we report the fabrication of two distinct fully integrated, self‐standing solar formate device architectures and elucidate the underlying design principles and material selection strategies. The first architecture integrates a Si photocathode with a BiVO 4 photoanode and utilizes a highly active Pd catalyst for CO 2 reduction. It represents the first artificial leaf device comprising two photoelectrodes (excluding photovoltaic [PV]‐biased electrodes) for effective formate production under single‐beam illumination. The second architecture employs a dark cathode and a dark anode driven by a 4‐junction perovskite solar cell and uses a highly stable Bi catalyst for CO 2 reduction. This device delivers a record‐high formate production rate of 174 µmol h −1 with a remarkable solar‐to‐formate energy efficiency of 2% among all artificial leaf devices reported to date. These results demonstrate the feasibility and outline the design principles of both PV‐free and PV‐assisted device architectures in solar fuel production.
Article Details
Authors (10)
Kunpeng Yu
Department of Chemistry
Bo Shang
School of Chemistry and Chemical Engineering
Qi Sun
Yuanzuo Gao
Department of Chemistry
Longtao Ren
Department of Chemistry Yale University New Haven Connecticut USA
Samuel Schaefer
Department of Pediatrics, School of Medicine, University of California
Jindou Yang
Department of Chemistry
Cristina Decavoli
Department of Chemistry, Yale University, 225 Prospect Street, New Haven, Connecticut 06520, United States
Gary W. Brudvig
Hailiang Wang
Department of Chemistry