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Diffusion-Dominated Crystallization in Microchannels for 2D RP Perovskite Microwire Arrays With Pure n Values

  • Qiling Xu
  • , Feifei Qin
  • , Xiaozong Hu
  • , Jiamin Liu
  • , Yiqiang Zhang
  • , Zhenzhen Wang
  • , Sihui Peng
  • , Shiyuan Liu
  • , Pengwei Li
  • , Yanlin Song
  • , Qi Pan
  • Zhengzhou University
  • Huazhong University of Science and Technology
  • CAS - Institute of Chemistry

Research output: Contribution to journalArticlepeer-review

Abstract

Phase-pure 2D layered metal-halide perovskites can reduce phase heterogeneity and associated energy/charge-transfer losses, but solution processing typically produces mixed multiple-quantum-well phases (n > 2) owing to evaporation-driven convection and local off-stoichiometry. Here, we develop a microchannel-structured template induced assembly engineering to fabricate phase-pure BA2MAn−1PbnI3n+1 microwire arrays with programmable n (1–6). The confined space improves uniform distributions of each component in the precursor solution by suppressing convection and enhancing diffusion-limited mass transport, thereby avoiding the deviation from the stoichiometric ratio. Photoluminescence measurements show uniform, single-peak emission consistent with high phase-purity of microwires. The photodetector based on n = 6 microwire array achieves record performances with a responsivity of 1.039 × 104 A/W, an ON/OFF ratio of 105, and fast response times of 65/215 µs, enabling real-time heartbeat monitoring. This strategy offers a robust platform for the controlled crystallization of layered perovskites and scalable fabrication of high-performance and high-fidelity device arrays.

Original languageEnglish
JournalAdvanced Functional Materials
DOIs
StateAccepted/In press - 2026

Keywords

  • 2D perovskite
  • mass transport
  • microchannels
  • phase regulation
  • photodetector arrays

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