Epitaxial Engineering of FAPbBr3/FAPbBr3-xClx Heterojunctions for Sensitive X-ray and α-Particle Detection

Tongyang Wang, Xin Zhang, Quanchao Zhang, Xin Liu, Haowen Luo, Yingying Hao, Ruichen Bai, Lingyan Xu, Jianxi Liu, Yadong Xu

Research output: Contribution to journalArticlepeer-review

Abstract

Halide perovskite crystals have attracted extensive research in the field of radiation detection, thanks to their superior carrier transport abilities and facile solution preparation methods. However, dark current instability is common in perovskite single-crystal devices, especially under high bias voltages. Herein, we achieve the modulation of surface defects by epitaxial growth to obtain heterogeneous crystals with high crystalline quality, developing FAPbBr3/FAPbBr3-xClx heterojunctions to address severely increased dark current. The FAPbBr3/FAPbBr2.7Cl0.3 heterojunction exhibits reduced trap-state density and a significant built-in potential difference. Based on the effective utilization of the dark current cutoff effect of the heterojunctions, a dark current of 0.83 μA·cm-2 is realized for the FAPbBr3/FAPbBr2.7Cl0.3 detector, which is 7.5% of that based on an intrinsic FAPbBr3 single crystal. Thus, an optimal sensitivity of 33612 μC·Gyair-1·cm-2 for Au/FAPbBr3/FAPbBr2.7Cl0.3/Au detector was achieved, at a bias of −250 V. Simultaneously, an energy resolution of 15.2% for 241Am @ 5.49 MeV α-particle-induced pulse height spectra was recognized. Our work not only establishes a new benchmark for FAPbBr3-based perovskite performance but also presents a pragmatic strategy to lower the harmful dark current in three-dimensional halide perovskite single crystals.

Original languageEnglish
Pages (from-to)4707-4715
Number of pages9
JournalACS Photonics
Volume11
Issue number11
DOIs
StatePublished - 20 Nov 2024

Keywords

  • FAPbBr
  • heterojunction
  • liquid-phase epitaxy
  • X-ray detection
  • α-particle detection

Fingerprint

Dive into the research topics of 'Epitaxial Engineering of FAPbBr3/FAPbBr3-xClx Heterojunctions for Sensitive X-ray and α-Particle Detection'. Together they form a unique fingerprint.

Cite this