Polyphenol‐Mediated Liquid Metal Composite Architecture for Solar Thermoelectric Generation

Author:

Flores Nieves12ORCID,Centurion Franco2ORCID,Zheng Jiewei2ORCID,Baharfar Mahroo2ORCID,Kilani Mohamed2ORCID,Ghasemian Mohammad B.12ORCID,Allioux Francois‐Marie12ORCID,Tang Jianbo2ORCID,Tang Junma12ORCID,Kalantar‐Zadeh Kourosh12ORCID,Rahim Md. Arifur12ORCID

Affiliation:

1. School of Chemical and Biomolecular Engineering University of Sydney Sydney New South Wales 2006 Australia

2. School of Chemical Engineering University of New South Wales (UNSW) Sydney New South Wales 2052 Australia

Abstract

AbstractThe development of advanced solar energy technologies, which efficiently convert solar energy to heat and then to electricity, remains a significant challenge in the pursuit of clean energy production. Here, this challenge is addressed by designing a photothermal absorber composed of liquid gallium particles and a natural polyphenol‐based coordination ink. The design of this composite takes advantage of the tuneable light absorption properties of the polyphenol inks and can also be applied onto flexible substrates. While the ink utilizes two types of coordination complexes to absorb light at different wavelengths, the liquid gallium particles with high thermal and electrical properties provide enhanced thermoelectric effect. As such, the photothermal composite exhibits a broad‐spectrum light absorption and highly efficient solar‐to‐heat conversion. A thermoelectric generator coated with the photothermal composite exhibits an impressive voltage output of ≈185.3 mV when exposed to 1 Sun illumination, without requiring any optical concentration, which sets a new record for a power density at 345.5 µW cm−2. This work showcases the synergistic combination of natural compound‐based light‐absorbing coordination complexes with liquid metals to achieve a strong photothermal effect and their integration into thermoelectric devices with powerful light harvesting capabilities.

Funder

Australian Research Council

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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