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Multiscale in modelling and validation for solar photovoltaics

  • Tareq Abu Hamed
  • , Nadja Adamovic
  • , Urs Aeberhard
  • , Diego Alonso-Alvarez
  • , Zoe Amin-Akhlaghi
  • , Matthias Auf Der Maur*
  • , Neil Beattie
  • , Nikola Bednar
  • , Kristian Berland
  • , Stefan Birner
  • , Marco Califano
  • , Ivana Capan
  • , Bostjan Cerne
  • , Irinela Chilibon
  • , James. P. Connolly
  • , Frederic Cortes Juan
  • , Jose Coutinho
  • , Christin David
  • , Knut Deppert
  • , Vesselin Donchev
  • Marija Drev, Boukje Ehlen, Nicholas Ekins-Daukes, Jacky Even, Laurentiu Fara, David Fuertes Marron, Alessio Gagliardi, Blas Garrido, Violetta Gianneta, Maria Gomes, Jean-Francois Guillemoles, Mircea Guina, Janne Halme, Mateja Hocevar, Lucjan Jacak, Witold Jacak, Zoran Jaksic, Lejo K. Joseph, Spyridon Kassavetis, Vaidotas Kazukauskas, Jean-Paul Kleider, Katarzyna Kluczyk, Radovan Kopecek, Ursa Opara Krasovec, Jean-Louis Lazzari, Efrat Lifshitz, Martin Loncaric, Soren Peder Madsen, Antonio Marti Vega, Denis Mencaraglia, Maria E. Messing, Felipe Murphy Armando, Androula G. Nassiopoulou, Ahmed Neijm, Akos Nemcsics, Victor Neto, Laurent Pedesseau, Clas Persson, Konstantinos Petridis, Lacramioara Popescu, Georg Pucker, Jelena Radovanovic, Julio C. Rimada, Mimoza Ristova, Ivana Savic, Hele Savin, Marushka Sendova-Vassileva, Abdurrahman Sengul, Jose Silva, Ullrich Steiner, Jan Storch, Emmanuel Stratakis, Shuxia Tao, Pavel Tomanek, Stanko Tomic, Antti Tukiainen, Rasit Turan, Jose Maria Ulloa, Shengda Wang, Fatma Yuksel, Jaroslav Zadny, Javad Zarbakhsh
*Tämän työn vastaava kirjoittaja
  • Imperial College London
  • Trimo Grp
  • University of Barcelona
  • ISC Konstanz eV
  • Aristotle University of Thessaloniki
  • Silvaco Europe Ltd
  • Bulent Ecevit University
  • Adolphe Merkle Institute
  • Czech Academy of Sciences
  • Dead Sea and Arava Science Center
  • Institute of Telecommunications
  • Forschungszentrum Jülich GmbH
  • ZAMSTEC − Science, Technology and Engineering Consulting
  • University of Rome Tor Vergata
  • Northumbria University
  • University of Oslo
  • nextnano GmbH
  • University of Leeds
  • ZEL-EN d.o.o.
  • National Institute of Research and Development for Optoelectronics
  • CNRS- Université Paris-Saclay
  • Polytechnic University of Valencia
  • University of Aveiro
  • Madrid Institute for Advanced Studies in Nanoscience
  • Lund University
  • Department of Astronomy, University of Sofia "St. Kliment Ohridski"
  • Boukje.com Consulting
  • Ruder Boskovic Institute
  • CNRS, Centre National de la Recherche Scientifique, Inst Astrophys Paris
  • University Politehnica of Bucharest
  • Technical University of Munich
  • Institute of Nanoscience and Nanotechnology
  • Universidade do Minho
  • The University of Tokyo
  • Tampere University of Technology
  • University of Ljubljana
  • Wroclaw University of Science and Technology
  • UNIVERSITY OF BELGRADE
  • Vilnius University
  • Carinthia University of Applied Sciences
  • Gebze Technical University
  • Polytechnic University of Madrid
  • Brno University of Technology
  • University of Salford
  • Eindhoven University of Technology
  • Foundation for Research and Technology—Hellas, IESL, Voutes
  • Middle East Technical University
  • Bulgarian Academy of Sciences
  • SS Cyril and Methodius University in Skopje
  • University of Havana
  • Aix-Marseille Université
  • Aarhus University
  • Univ Coll Cork UCC
  • Demokritos National Centre for Scientific Research
  • Óbuda University
  • Hellenic Mediterranean University
  • Technion
  • Fondazione Bruno Kessler

Tutkimustuotos: LehtiartikkeliArticleScientificvertaisarvioitu

7 Sitaatiot (Scopus)
246 Lataukset (Pure)

Abstrakti

Photovoltaics is amongst the most important technologies for renewable energy sources, and plays a key role in the development of a society with a smaller environmental footprint. Key parameters for solar cells are their energy conversion efficiency, their operating lifetime, and the cost of the energy obtained from a photovoltaic systemcompared to other sources. The optimization of these aspects involves the exploitation of new materials and development of novel solar cell concepts and designs. Both theoretical modeling and characterization of such devices require a comprehensive view including all scales from the atomic to the macroscopic and industrial scale. The different length scales of the electronic and optical degrees of freedoms specifically lead to an intrinsic need for multiscale simulation, which is accentuated in many advanced photovoltaics concepts including nanostructured regions. Therefore, multiscale modeling has found particular interest in the photovoltaics community, as a tool to advance the field beyond its current limits. In this article, we review the field of multiscale techniques applied to photovoltaics, and we discuss opportunities and remaining challenges.

AlkuperäiskieliEnglanti
Artikkeli10
Sivumäärä16
JulkaisuEPJ Photovoltaics
Vuosikerta9
DOI - pysyväislinkit
TilaJulkaistu - 23 lokak. 2018
OKM-julkaisutyyppiA1 Alkuperäisartikkeli tieteellisessä aikakauslehdessä

Rahoitus

The authors are grateful for the financial support by the COST Action MP1406 "MultiscaleSolar."

YK:n kestävän kehityksen tavoitteet

Tämä tuotos edistää seuraavia kestävän kehityksen tavoitteita:

  1. SDG 7 – Edullinen ja puhdas energia
    SDG 7 – Edullinen ja puhdas energia

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