Rotational dynamics of diammonium cations in lead bromide composites investigated by quasi-elastic neutron scattering
Kanming Shi1, Lorenzo Malavasi2, Fanni Juranyi3
1Department of Chemistry and Chemical Engineering, Chalmers University of Technology, SE-412 96, Göteborg, Sweden. maths.karlsson@chalmers.se.
Abstract:
We report results from quasielastic neutron scattering (QENS) measurements of the dynamical nature of diammonium cations in the two-dimensional (2D) metal halide perovskites (MHPs) (1,3-PDA)PbBr4 (PDA: phenylenediammonium), (1,4-PDA)PbBr4, and (1,4-XDA)PbBr4 (XDA: xylylenediammonium), and in the zero-dimensional (0D) perovskitoid (1,3-XDA)2PbBr6. QENS spectra measured upon heating from 44 to 350 K reveal the onset of picosecond timescale dynamics of the respective organic cation at around 225 K for 1,3-PDA, 250 K for 1,4-PDA, 250 K for 1,3-XDA, and 350 K for 1,4-XDA. Analyses of the elastic incoherent structure factor of the materials suggest that the observed dynamics can be assigned to three-fold (C3) and/or continuous rotational jump-diffusion dynamics of the terminal -NH3 groups of the respective organic cation for all materials. An average, apparent, residence time of the jump-diffusion dynamics has been extracted from the QENS data and takes values of about 1 ps for (1,3-PDA)PbBr4, 4-5 ps for (1,4-PDA)PbBr4 and (1,3-XDA)Pb2Br6, and 10 ps for (1,4-XDA)PbBr4 at 350 K. A comparison of the dynamical results with the length and symmetry of the organic cations suggests that a smaller organic cation (here PDA) and an asymmetric position of the two -NH3 groups (here 1,3-PDA and 1,3-XDA) correlate with a lower onset temperature and faster dynamics. A comparison of the dynamics results with the photoluminescence (PL) spectra of the materials may indicate that slower -NH3 dynamics correlates with a lower thermal stability of PL due to less dynamic disorder.
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