Identification and Suppression of Point Defects in Bromide Perovskite Single Crystals Enabling Gamma-Ray Spectroscopy
Artikel i vetenskaplig tidskrift, 2024

Methylammonium lead tribromide (MAPbBr3) stands out as the most easily grown wide-band-gap metal halide perovskite. It is a promising semiconductor for room-temperature gamma-ray (γ-ray) spectroscopic detectors, but no operational devices are realized. This can be largely attributed to a lack of understanding of point defects and their influence on detector performance. Here, through a combination of crystal growth design and defect characterization, including positron annihilation and impedance spectroscopy, the presence of specific point defects are identified and correlated to detector performance. Methylammonium (MA) vacancies, MA interstitials, and Pb vacancies are identified as the dominant charge-trapping defects in MAPbBr3 crystals, while Br vacancies caused doping. The addition of excess MABr reduces the MA and Br defects and so enables the detection of energy-resolved γ-ray spectra using a MAPbBr3 single-crystal device. Interestingly, the addition of formamidinium (FA) cations, which converted to methylformamidinium (MFA) cations by reaction with MA+ during crystal growth further reduced MA defects. This enabled an energy resolution of 3.9% for the 662 keV 137Cs line using a low bias of 100 V. The work provides direction toward enabling further improvements in wide-bandgap perovskite-based device performance by reducing detrimental defects.

defects

gamma-ray detector

perovskite single crystal

Författare

Zhenyi Ni

College of Arts & Sciences

Liang Zhao

College of Arts & Sciences

Zhifang Shi

College of Arts & Sciences

Aryaveer Singh

University of Dundee

Julia Wiktor

Chalmers, Fysik, Kondenserad materie- och materialteori

Maciej O. Liedke

Andreas Wagner

Yifan Dong

National Renewable Energy Laboratory

Matthew C. Beard

National Renewable Energy Laboratory

D. J. Keeble

University of Dundee

Jinsong Huang

College of Arts & Sciences

Helmholtz

Advanced Materials

09359648 (ISSN) 15214095 (eISSN)

Vol. In Press

Atomistisk design av fotoadsorberande material

Vetenskapsrådet (VR) (2019-03993), 2020-01-01 -- 2023-12-31.

Kvantmekanisk Beskrivning av Fullständiga Halvledaranordning

Stiftelsen för Strategisk forskning (SSF) (FFL21-0129), 2022-08-01 -- 2027-12-31.

Ämneskategorier

Materialkemi

Den kondenserade materiens fysik

DOI

10.1002/adma.202406193

PubMed

39003617

Mer information

Senast uppdaterat

2024-07-31