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Published on: March 19, 2017
2D Ruddlesden-Popper Perovskites with a Thick Octahedral Layer (n = 7) as a Robust Alternative for Energy-Related
Aryane Tofanello1, André L M Freitas1, Fabio Abud1
1Center for Natural and Human Sciences (CCNH), Federal University of ABC (UFABC), Santo André, São Paulo 09210-580, Brazil.
Abstract:
Halide perovskites have led to outstanding optoelectronic performance, even though their operational stability, especially for 3D MAPbI3, persists as a critical obstacle. Here, we synthesize a Ruddlesden-Popper iodide series (n = 1, 2, and 7) using a butylammonium spacer and directly compare the thick-layer member (n = 7; hereafter termed quasi-3D) with 3D MAPbI3. Structural and morphological analyses confirm a progressive evolution toward 3D-like character with increasing n (octahedral sheets), while steady-state optical measurements show that the n = 7 phase exhibits an emission energy close to MAPbI3. Crucially, in situ diamond-anvil-cell photoluminescence under hydrostatic pressure reveals markedly different flexibility: MAPbI3 undergoes strong PL quenching at lower pressure and shows incomplete spectral recovery upon decompression, whereas the quasi-3D phase sustains emission to substantially higher pressures and displays reversible PL restoration after pressure release. Complementary surface measurements show enhanced hydrophobicity for the quasi-3D sample, and electrical conductivity demonstrates a comparable light-induced photoconductivity response to that of MAPbI3. Our results suggest that thick-layer (n = 7) Ruddlesden-Popper perovskites are a promising route to improve chemical and mechanical stability while preserving 3D-like optoelectronic functionality for energy-related devices.

