Multimodal electron microscopy of halide perovskite interfacial dynamics.
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Abstract
Halide perovskite light-emitting diodes promise high-efficiency1-3, low-cost optoelectronics, yet their operational instability remains a critical barrier to practical deployment. Here we develop a multimodal in situ electron microscopy approach that integrates four-dimensional scanning transmission electron microscopy, energy-dispersive X-ray spectroscopy and atomic-resolution imaging to directly visualize structural and chemical evolution in a working halide perovskite light-emitting diode with nanometre precision. Our in situ biasing measurements uncover nanoscale structural and chemical transformations initiated at transport layer interfaces, including the formation of metallic lead and lead-rich secondary phases, as well as strain-driven grain fragmentation. On biasing, we observe the partial transformation of the metallic Al contact to insulating AlCl3. Crucially, whereas the bulk of the perovskite emitter remains relatively intact, our experiment shows that degradation is localized at interfaces. By comparing in situ and ex situ measurements, these results establish a mechanistic link between interfacial strain, ionic transport and electrochemical reactions in working devices, and provide a broadly applicable framework for nanoscale degradation analysis in complex multilayered optoelectronic systems using multimodal in situ biasing microscopy.
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Acknowledgements: We acknowledge the support of the Wolfson Electron Microscopy Suite and the use of Thermo Fisher Spectra 300 TEM, funded by EPSRC grant EP/R008779/1. We thank the Diamond Light Source for access and support in using the Electron Physical Science Imaging Centre (Instrument E02 and proposal number MG37292), which contributed to the SED results presented here. We acknowledge M. Danaie and C. Allen for their assistance in the in situ biasing experiment. We acknowledge F. Su for his assistance in decomposition of the SED dataset. This work was supported by the Henry Royce Institute for Advanced Materials through the Equipment Access Scheme, which enabled access to the FIB and TEM at Cambridge; Cambridge Royce facilities grant CAM-YR8-UI-042-REAS. Schematic figures were created using Figdraw. This work was supported by EPSRC EP/V06164X/1 (R.H.F., S.D.S., T.L.) and the Royal Society and Tata Group UF150033 and URF\R\221026 (S.D.S.). T.L. acknowledges the funding from Leverhulme Trust Early Career fellowship (ECF-2024-217).
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1476-4687
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EPSRC (EP/V06164X/1)
Royal Society (URF\R\221026 and RF\ERE\221004)
Leverhulme Trust (ECF-2024-217)

