Aminoazanium of A-site Cations in Metal-Free Halide Perovskite Single Crystals to Reduce Thermal Expansion for Efficient X-ray Detection.
Zhizai LiYunqing PangGuoqiang PengHaoxu WangQijun LiXufeng ZhouZhenHua LiQiang WangZhiwen JinPublished in: The journal of physical chemistry letters (2024)
Metal-free perovskites (MFPs) have recently become a newcomer in X-ray detection due to their flexibility and low toxicity characteristics. However, their photoelectronic properties and stability should be further improved mainly through materials design. Here, the aminoazanium of DABCO 2+ was developed for the preparation of NDABCO-NH 4 Br 3 (NDABCO = N-amino-N'-diazabicyclo[2.2.2]octonium) single crystals (SCs), and its physical properties, intermolecular interactions, and device performance were systematically explored. Notably, NDABCO-NH 4 Br 3 can achieve improved stability by enlarging defect formation energy and inducing abundant intermolecular forces. Moreover, the slight lattice distortion could ensure the weakening electron-phonon coupling for improving carrier transport. In particular, the slight lattice distortion after the long-chain NDABCO 2+ introduction could retard thermal expansion for the preparation of high-quality crystals. Finally, the corresponding X-ray detector delivered a moderate sensitivity of 623.3 μC Gy air -1 cm -2 . This work provides a novel strategy through rationally designed organic cations to balance the material stability and device performance.
Keyphrases
- room temperature
- ionic liquid
- high resolution
- dual energy
- solar cells
- electron microscopy
- loop mediated isothermal amplification
- real time pcr
- molecularly imprinted
- label free
- physical activity
- oxidative stress
- mental health
- computed tomography
- image quality
- high intensity
- magnetic resonance
- perovskite solar cells
- sensitive detection
- contrast enhanced
- water soluble