Advancing high-throughput combinatorial aging studies of hybrid perovskite thin films precise automated characterization methods and machine learning assisted analysis.

J Mater Chem A Mater

Laboratory for Surface Science and Coating Technologies, Empa - Swiss Federal Laboratories for Materials Science and Technology Switzerland

Published: March 2024

AI Article Synopsis

  • Automated high-throughput workflows are gaining importance for optimizing material stability, but many limitations exist, such as the use of unsuitable synthesis techniques and ambient conditions that hinder result transferability.
  • This study focuses on MAPbI thin films to demonstrate a new combinatorial inert-gas workflow for assessing materials' intrinsic degradation under controlled environments, simulating encapsulated device conditions.
  • Utilizing advanced automated characterization techniques and a custom UV-Vis aging setup, the research reveals insights into degradation kinetics and phase changes, supported by a machine learning model that connects optical spectra variations to aging processes, enabling better comparison of material stability across multiple samples.

Article Abstract

To optimize material stability, automated high-throughput workflows are of increasing interest. However, many of those workflows either employ synthesis techniques not suitable for large-area depositions or are carried out in ambient conditions, which limits the transferability of the results. While combinatorial approaches based on vapour-based depositions are inherently scalable, their potential for controlled stability assessments has yet to be exploited. Based on MAPbI thin films as a prototypical system, we demonstrate a combinatorial inert-gas workflow to study intrinsic materials degradation, closely resembling conditions in encapsulated devices. Specifically, we probe the stability of MAPbI thin films with varying residual PbI content. A comprehensive set of automated characterization techniques is used to investigate the structure and phase constitution of pristine and aged thin films. A custom-designed UV-Vis aging setup is used for real-time photospectroscopy measurements of the material libraries under relevant aging conditions, such as heat or light-bias exposure. These measurements are used to gain insights into the degradation kinetics, which can be linked to intrinsic degradation processes such as autocatalytic decomposition. Despite scattering effects, which complicate the conventional interpretation of UV-Vis results, we demonstrate how a machine learning model trained on the comprehensive characterization data before and after the aging process can link changes in the optical spectra to phase changes during aging. Consequently, this approach does not only enable semi-quantitative comparisons of material stability but also provides detailed insights into the underlying degradation processes which are otherwise mostly reported for investigations on single samples.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10950304PMC
http://dx.doi.org/10.1039/d3ta07274fDOI Listing

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