Why Perovskite Thermal Stress is Unaffected by Thin Contact Layers

Author:

McAndrews Gabriel R.1ORCID,Ahmad Muneeza2ORCID,Guo Boyu3,Kaczaral Samantha C.4ORCID,Amassian Aram3ORCID,Rolston Nicholas2ORCID,McGehee Michael D.145ORCID

Affiliation:

1. Materials Science and Engineering Program University of Colorado Boulder 4001 Discovery Drive Boulder CO 80303 USA

2. Arizona State University Tempe AZ 85281 USA

3. Department of Materials Science and Engineering North Carolina State University 911 Partners Way, Room 3002 Engineering Building I Raleigh NC 27695 USA

4. Department of Chemical and Biological Engineering University of Colorado Boulder Boulder CO 80303 USA

5. Renewable and Sustainable Energy Institute (RASEI) University of Colorado Boulder 4001 Discovery Drive Boulder CO 80303 USA

Abstract

AbstractMetal halide perovskite photovoltaics have emerged as a high efficiency, low‐cost alternative that can potentially rival or enhance conventional silicon technology. Despite exceptional initial power conversion efficiencies, achieving compliance with international standards and widespread adoption requires further enhancements to their operational stability. Notably, addressing mechanical strain and stress in brittle perovskites has emerged as a pivotal approach to mitigate chemical degradation and improve reliability during thermal cycling. In this study, a popularized strain engineering strategy is investigated in which a high coefficient of thermal expansion (CTE) hole transport layer (i.e., PDCBT) is cast onto inorganic perovskite (CsPbI2Br) at 100 °C. Contrary to previously published results, the X‐ray diffraction (XRD):Sin2ψ and substrate curvature measurement techniques show that the hole transport layer has no discernible impact on perovskite strain. The accuracy of the XRD:Sin2ψ method for measuring strain is highlighted in contrast to an analysis based on shifts of single XRD peaks which can be influenced by multiple artifacts. The findings in this study are in accordance with mechanics theory: thin layers are unable to induce significant strain changes in perovskite thin films as the force they apply is negligible compared to that applied by a thick and stiff substrate.

Funder

Solar Energy Technologies Office

Publisher

Wiley

Reference52 articles.

1. “Best Research‐Cell Efficiency Chart ”https://www.nrel.gov/pv/cell‐efficiency.html (accessed: May 2024).

2. “LONGi sets a new world record of 33.9% for the efficiency of crystalline silicon‐perovskite tandem solar cells ”https://www.longi.com/en/news/new‐world‐record‐for‐the‐efficiency‐of‐crystalline‐silicon‐perovskite‐tandem‐solar‐cells// (accessed: Feb 2024).

3. Silicon heterojunction solar cell with interdigitated back contacts for a photoconversion efficiency over 26%

4. Degradation pathways in perovskite solar cells and how to meet international standards

5. Understanding Degradation Mechanisms and Improving Stability of Perovskite Photovoltaics

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