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Title:

Compositional engineering of perovskites with machine learning

Document type:
Zeitschriftenaufsatz
Author(s):
Laakso, Jarno; Todorović, Milica; Li, Jingrui; Zhang, Guo-Xu; Rinke, Patrick
Abstract:
Perovskites are promising materials candidates for optoelectronics, but their commercialization is hindered by toxicity and materials instability. While compositional engineering can mitigate these problems by tuning perovskite properties, the enormous complexity of the perovskite materials space aggravates the search for an optimal optoelectronic material. We conducted compositional space exploration through Monte Carlo (MC) convex hull sampling, which we made tractable with machine learning (M...     »
Journal title:
Physical Review Materials 2022-11
Year:
2022
Journal volume:
6
Journal issue:
11
Fulltext / DOI:
doi:10.1103/physrevmaterials.6.113801
Publisher:
American Physical Society (APS)
E-ISSN:
2475-9953
Date of publication:
07.11.2022
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