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research article

Workflow Engineering in Materials Design within the BATTERY 2030+Project

Schaarschmidt, Joerg
•
Yuan, Jie
•
Strunk, Timo
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December 16, 2021
Advanced Energy Materials

In recent years, modeling and simulation of materials have become indispensable to complement experiments in materials design. High-throughput simulations increasingly aid researchers in selecting the most promising materials for experimental studies or by providing insights inaccessible by experiment. However, this often requires multiple simulation tools to meet the modeling goal. As a result, methods and tools are needed to enable extensive-scale simulations with streamlined execution of all tasks within a complex simulation protocol, including the transfer and adaptation of data between calculations. These methods should allow rapid prototyping of new protocols and proper documentation of the process. Here an overview of the benefits and challenges of workflow engineering in virtual material design is presented. Furthermore, a selection of prominent scientific workflow frameworks used for the research in the BATTERY 2030+ project is presented. Their strengths and weaknesses as well as a selection of use cases in which workflow frameworks significantly contributed to the respective studies are discussed.

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Type
research article
DOI
10.1002/aenm.202102638
Web of Science ID

WOS:000730776600001

Author(s)
Schaarschmidt, Joerg
Yuan, Jie
Strunk, Timo
Kondov, Ivan
Huber, Sebastiaan P.
Pizzi, Giovanni  
Kahle, Leonid  
Bolle, Felix T.
Castelli, Ivano E.
Vegge, Tejs
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Date Issued

2021-12-16

Publisher

WILEY-V C H VERLAG GMBH

Published in
Advanced Energy Materials
Article Number

2102638

Subjects

Chemistry, Physical

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Energy & Fuels

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Materials Science, Multidisciplinary

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Physics, Applied

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Physics, Condensed Matter

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Chemistry

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Materials Science

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Physics

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high-throughput materials simulation

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multi-scale modeling

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multi-scale simulation

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science

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environment

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challenges

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catalyst

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systems

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
THEOS  
Available on Infoscience
January 1, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/184242
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