Challenges and prospects of plasmonic metasurfaces for photothermal catalysis

Author:

Mascaretti Luca1ORCID,Schirato Andrea2ORCID,Fornasiero Paolo3ORCID,Boltasseva Alexandra4ORCID,Shalaev Vladimir M.4ORCID,Alabastri Alessandro5ORCID,Naldoni Alberto1ORCID

Affiliation:

1. Czech Advanced Technology and Research Institute, Regional Centre of Advanced Technologies and Materials , Palacký University Olomouc , Šlechtitelů 27, 77900 Olomouc , Czech Republic

2. Department of Physics , Politecnico Di Milano , Piazza Leonardo Da Vinci 32, 20133 Milan , Italy ; and Istituto Italiano di Tecnologia , Via Morego 30, 16163 Genoa , Italy

3. Department of Chemical and Pharmaceutical Sciences, Center for Energy, Environment and Transport Giacomo Ciamiciam, INSTM Trieste Research Unit and ICCOM-CNR Trieste Research Unit , University of Trieste , Via L. Giorgieri 1, 34127 Trieste , Italy

4. School of Electrical & Computer Engineering and Birck Nanotechnology Center , Purdue University , West Lafayette , USA

5. Department of Electrical and Computer Engineering , Rice University , 6100 Main Street, 77005 Houston , TX , USA

Abstract

Abstract Solar-thermal technologies for converting chemicals using thermochemistry require extreme light concentration. Exploiting plasmonic nanostructures can dramatically increase the reaction rates by providing more efficient solar-to-heat conversion by broadband light absorption. Moreover, hot-carrier and local field enhancement effects can alter the reaction pathways. Such discoveries have boosted the field of photothermal catalysis, which aims at driving industrially-relevant chemical reactions using solar illumination rather than conventional heat sources. Nevertheless, only large arrays of plasmonic nano-units on a substrate, i.e., plasmonic metasurfaces, allow a quasi-unitary and broadband solar light absorption within a limited thickness (hundreds of nanometers) for practical applications. Through moderate light concentration (∼10 Suns), metasurfaces reach the same temperatures as conventional thermochemical reactors, or plasmonic nanoparticle bed reactors reach under ∼100 Suns. Plasmonic metasurfaces, however, have been mostly neglected so far for applications in the field of photothermal catalysis. In this Perspective, we discuss the potentialities of plasmonic metasurfaces in this emerging area of research. We present numerical simulations and experimental case studies illustrating how broadband absorption can be achieved within a limited thickness of these nanostructured materials. The approach highlights the synergy among different enhancement effects related to the ordered array of plasmonic units and the efficient heat transfer promoting faster dynamics than thicker structures (such as powdered catalysts). We foresee that plasmonic metasurfaces can play an important role in developing modular-like structures for the conversion of chemical feedstock into fuels without requiring extreme light concentrations. Customized metasurface-based systems could lead to small-scale and low-cost decentralized reactors instead of large-scale, infrastructure-intensive power plants.

Funder

Air Force Office of Scientific Research

Horizon 2020 Framework Programme

National Science Foundation

Ministry of Education, Youth and Sports

Czech Science Foundation

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

Reference156 articles.

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