An artificial leaf device built with earth-abundant materials for combined H2 production and storage as formate with efficiency >10%

Author

Ampelli, Claudio

Giusi, Daniele

Micel, Matteo

Merdzhanova, Tsvetelina

Smirnov, Vladimir

Chime, Ugochi

Astakhov, Oleksandr

Martín, Antonio José

Veenstra, Florentine Louise Petronella

Garcés Pineda, Felipe Andrés

González-Cobos, Jesús

García-Tecedor, Miguel

Giménez, Sixto

Jaegermann, Wolfram

Centi, Gabriele

Pérez-Ramírez, Javier

Galán-Mascarós, José Ramón

Perathoner, Siglinda

Publication date

2023-02-15



Abstract

A major challenge for achieving energy transition and transforming the current energy model into distributed production is the development of efficient artificial leaf-type devices capable of directly converting carbon dioxide (CO2), water and sunlight into sustainable fuels and chemicals under ambient conditions. These devices should avoid using critical raw materials to be sustainable and costcompetitive. We report top-level results for the first time in converting CO2 and H2O to fuels (formate and H2) using sunlight and electrodes based solely on earth-abundant materials. The cell provides a solar-to-fuel efficiency of >10% combined with world-record current densities to comparable devices operating at room temperature, without adding sacrificial donors or electrical bias. In addition, we present the novel concept of producing at the same time H2 and an H2-storage element (formate), the latter used to produce H2 when light is absent. This solution allows continuous (24 h) hydrogen production using an artificial-leaf device. For the first time, we show the feasibility of this solution. The experimental results were obtained in an optimised, compact electrochemical flow cell, with electrodes based on Cu–S and Ni–Fe–Zn oxide (for CO2 reduction and oxygen evolution reactions, respectively) supported on gas-diffusion substrates, integrated with a low-cost Si-based photovoltaic module. The cell design allows for easy scale-up and low manufacturing and operating costs. The cell operates at a current density of about 17 mA cm-2 and a full-cell voltage of 2.5 V (stable for at least ten hours and in on–off operations), providing formate productivity of 193 mmol h-1 cm-2 , paving the way towards the implementation of affordable artificial-leaf type systems in the future energy scenario.

Document Type

Article
Published version

Language

English

CDU Subject

00 - Prolegomena. Fundamentals of knowledge and culture. Propaedeutics

Subject

Química

Pages

18 p.

Publisher

RSC

Grant Agreement Number

H2020- FETPROACT Project Number 732840

European Union through the DECADE H2020 project (ID: 862030)

MIUR (Italy) through the PRIN Project CO2 ONLY (No. 2017WR2LRS)

ETH Research Grant (ETH-47 19-1)

PID2020-116093RB-C41 funded by MCIN/AEI/ 10.13039/501100011033.

Documents

d2ee03215e.pdf

2.248Mb

 

Rights

Creative Commons. Attribution-NonCommercial 3.0 Unported (CC BY-NC 3.0)

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