The scalable synthesis of high-quality halide perovskite single crystals is essential for advanced radiation detection but is constricted by the difficulty of synthesizing high-quality single crystals. Here, we report a dynamic diffusion-controlled antisolvent method that enables the control of the crystallization by modulating the interfacial methanol diffusion. This strategy successfully suppresses the crystal nucleation by further facilitating the growth of millimeter-scale CsPbBr3 single crystals with ultralow trap density and high orientation (texture coefficient ∼99.9%). As a result, X-ray detectors based on these crystals exhibit ultrasensitive response (1.09 × 106 μC Gy1– cm–2) and robust γ-ray stability (>104 Gy), outperforming the previously reported CsPbBr3 single crystal. The method is also broadly applicable to MAPbBr3 and FAPbBr3 systems, offering a versatile pathway toward compositional control. This work provides both a universal crystal growth strategy and mechanistic insight into solvent–antisolvent interface engineering, opening new pathways for perovskite-based optoelectronics and radiation detection technologies.
Yang et al. (Sat,) studied this question.