4.8 Article

Pressure-Induced Phase Transformation, Reversible Amorphization, and Anomalous Visible Light Response in Organolead Bromide Perovskite

期刊

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 137, 期 34, 页码 11144-11149

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jacs.5b06346

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资金

  1. DOE-BES X-ray Scattering Core Program [DE-FG02-99ER45775]
  2. DOE-NNSA [DE-NA0001974]
  3. DOE-BES [DE-FG02-99ER45775, DE-AC02-06CH11357]
  4. NSF
  5. National Natural Science Foundation of China [21301063]
  6. [DE-NA0001982]
  7. [EAR-1128799]
  8. [DE-FG02-94ER14466]

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Hydrostatic pressure, as an alternative of chemical pressure to tune the crystal structure and physical properties, is a significant technique for novel function material design and fundamental research. In this article, we report the phase stability and visible light response of the organolead bromide perovskite, CH3NH3PbBr3 (MAPbBr(3)), under hydrostatic pressure up to 34 GPa at room temperature: Two phase transformations below 2 GPa (from Pm (3) over barm to Im (3) over bar, then to Pnma) and a reversible amorphization starting from about 2 GPa were observed, which could be attributed to the tilting of PbBr6 octahedra and destroying of long-range ordering of MA cations, respectively. The visible light response of MAPbBr3 to pressure was studied by in situ photoluminescence, electric resistance, photocurrent measurements and first-principle simulations. The anomalous band gap evolution during compression with red-shift followed by blue-shift is explained by the competition between compression effect and pressure-induced amorphization. Along with the amorphization process accomplished around 25 GPa, the resistance increased by 5 orders of magnitude while the system still maintains its semiconductor characteristics and considerable response to the visible light irradiation. Our results not only show that hydrostatic pressure may provide an applicable tool for the organohalide perovskites based photovoltaic device functioning as switcher or controller, but also shed light on the exploration of more amorphous organometal composites as potential light absorber.

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