Here we report on the first structural and optical high-pressure investigation of MASnBr(3) (MA = [CH3NH3](+)) and CsSnBr3 halide perovskites. A massive red shift of 0.4 eV for MASnBr(3) and 0.2 eV for CsSnBr3 is observed within 1.3 to 1.5 GPa from absorption spectroscopy, followed by a huge blue shift of 0.3 and 0.5 eV, respectively. Synchrotron powder diffraction allowed us to correlate the upturn in the optical properties trend (onset of blue shift) with structural phase transitions from cubic to orthorhombic in MASnBr(3) and from tetragonal to monoclinic for CsSnBr3. Density functional theory calculations indicate a different underlying mechanism affecting the band gap evolution with pressure, a key role of metal-halide bond lengths for CsSnBr3 and cation orientation for MASnBr(3), thus showing the impact of a different A-cation on the pressure response. Finally, the investigated phases, differently from the analogous Pb-based counterparts, are robust against amorphization showing defined diffraction up to the maximum pressure used in the experiments.

Band Gap Engineering in MASnBr(3) and CsSnBr3 Perovskites: Mechanistic Insights through the Application of Pressure

Mahata Arup;Mosconi Edoardo;De Angelis Filippo;
2019

Abstract

Here we report on the first structural and optical high-pressure investigation of MASnBr(3) (MA = [CH3NH3](+)) and CsSnBr3 halide perovskites. A massive red shift of 0.4 eV for MASnBr(3) and 0.2 eV for CsSnBr3 is observed within 1.3 to 1.5 GPa from absorption spectroscopy, followed by a huge blue shift of 0.3 and 0.5 eV, respectively. Synchrotron powder diffraction allowed us to correlate the upturn in the optical properties trend (onset of blue shift) with structural phase transitions from cubic to orthorhombic in MASnBr(3) and from tetragonal to monoclinic for CsSnBr3. Density functional theory calculations indicate a different underlying mechanism affecting the band gap evolution with pressure, a key role of metal-halide bond lengths for CsSnBr3 and cation orientation for MASnBr(3), thus showing the impact of a different A-cation on the pressure response. Finally, the investigated phases, differently from the analogous Pb-based counterparts, are robust against amorphization showing defined diffraction up to the maximum pressure used in the experiments.
2019
VISIBLE-LIGHT RESPONSE
HALIDE PEROVSKITE
HYBRID PEROVSKITES
PHASE-TRANSITIONS
INORGANIC PEROVSKITE
OPTICAL-PROPERTIES
LONE-PAIR
AMORPHIZATION
BROMIDE
INTERPLAY
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/369885
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus ND
  • ???jsp.display-item.citation.isi??? 82
social impact