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Controlling Phase Transition Dynamics in Laser-Printed Perovskite Films via Additive-Driven Strain Engineering

Published

Author(s)

Hurriyet Yuce Cakir, Manikanta Makala, Ganga Neupane, Marielle Deconinck, Vladimir Shilovskikh, Xinyi Zhou, Rudolph Holley III, Quinn Burlingame, Yana Vaynzof, Yueh-Lin Loo, Behrang Hamadani, Oana Jurchescu

Abstract

The structural phase transitions in hybrid perovskites are critical to their performance and stability, but controlling them remains a significant challenge. Here, we demonstrate that the dynamics of the low-temperature tetragonal-to-orthorhombic phase transition in laser-printed MAPbI3 films can be controlled by tailoring additive chemistry. We show that the choice of charge control agent (CCA) directly impacts the intrinsic defect and strain landscape of the resulting film: an ionic CCA promotes a low-strain lattice that facilitates the phase transition. In contrast, a molecular CCA induces a high-strain, defect-rich lattice, which creates a high kinetic barrier that suppresses the transition and effectively "pins" the tetragonal phase. This work establishes a strategy to engineer strain and manage phase behavior in perovskite films, demonstrating that the ability to "lock" or "enable" a specific crystal phase by selecting additives provides a pathway to mitigate degradation and engineer stable, high-performance perovskite devices.
Citation
ACS Energy Letters

Citation

Yuce Cakir, H. , Makala, M. , Neupane, G. , Deconinck, M. , Shilovskikh, V. , Zhou, X. , Holley III, R. , Burlingame, Q. , Vaynzof, Y. , Loo, Y. , Hamadani, B. and Jurchescu, O. (2026), Controlling Phase Transition Dynamics in Laser-Printed Perovskite Films via Additive-Driven Strain Engineering, ACS Energy Letters, [online], https://doi.org/10.1021/acsenergylett.6c00434, https://tsapps.nist.gov/publication/get_pdf.cfm?pub_id=961528 (Accessed September 17, 2026)
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Created April 10, 2026, Updated September 16, 2026
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