Bodil Holst

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Professor

University of Bergen
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Norway

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Recent Grants

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Mask Based Lithography for Fast, Large Scale Pattern Generation with Nanometer Resolution

Open Date: 2020-01-01

Close Date: 2023-12-31

Grant: Close

ISOS - Multifunktionelt is-avvisende, gjennomsigtigt belæg for vinduer og linser.

Open Date: 2019-01-01

Close Date: 2021-12-31

Grant: Close

The third international conference on scattering of atoms and molecules from surfaces

Open Date: 2016-01-01

Close Date: 2016-12-31

Grant: Close

Scanning Neutral Helium Microscopy: A novel tool for fast, nondestuctive characterisation of mechanical parameters for nanostructured coatings

Open Date: 2013-03-01

Close Date: 2016-08-31

Grant: Close

Quartz and Glass: Revealing the Atomic Surface Structures of Silica

Open Date: 2012-01-01

Close Date: 2017-12-31

Articles (19)

Enhancing Silicon Solar Cell Performance Using a Thin-Film-like Aluminum Nanoparticle Surface Layer

Solar cells play an increasing role in global electricity production, and it is critical to maximize their conversion efficiency to ensure the highest possible production. The number of photons entering the absorbing layer of the solar cell plays an important role in achieving a high conversion efficiency. Metal nanoparticles supporting localized surface plasmon resonances (LSPRs) have for years been suggested for increasing light in-coupling for solar cell applications. However, most studies have focused on materials exhibiting strong LSPRs, which often come with the drawback of considerable light absorption within the solar spectrum, limiting their applications and widespread use. Recently, aluminum (Al) nanoparticles have gained increasing interest due to their tuneable LSPRs in the ultraviolet and visible regions of the spectrum. In this study, we present an ideal configuration for maximizing light in-coupling into a standard textured crystalline silicon (c-Si) solar cell by determining the optimal Al nanoparticle and anti-reflection coating (ARC) parameters. The best-case parameters increase the number of photons absorbed by up to 3.3%. We give a complete description of the dominating light–matter interaction mechanisms leading to the enhancement and reveal that the increase is due to the nanoparticles optically exhibiting both particle- and thin-film characteristics, which has not been demonstrated in earlier works.

Year:

2024

Collaborators (14)

Andrea Salis

Associate Professor

Università degli Studi di Cagliari Cittadella Universitaria

ITALY

Martin M. Greve

University of Bergen

NORWAY

CARLO MARIA CARBONARO

Associate Professor

University of Cagliari

ITALY

Kristian Berland

Associate professor

Norwegian University of Life Sciences

NORWAY

Paul Dastoor

Professor

Newcastle University

AUSTRALIA

Lothar Wondraczek

-

GERMANY

Antonius T. J. van Helvoort

Professor

Norwegian University of Science and Technology

NORWAY

Ralf Thomas Weitz

University of Göttingen

GERMANY

Charlotte Bay Hasager

Technical University of Denmark

DENMARK

Drew Parsons

Associate Professor

University of Cagliari

ITALY

Frank Stienkemeier

University of Freiburg

GERMANY

Stein Dankert Kolstø

Professor in Science Education

University of Bergen

NORWAY

Gianangelo Bracco

Associate Professor

University of Genoa

ITALY

Nicolai Frost-Jensen Johansen

Technical University of Denmark

DENMARK
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