Phase‐Purified and Highly Textured 2D Perovskite ( n = 5) Photodetectors Grown via a Temperature‐Gradient‐Free Thermal‐Pressing‐Casting Strategy for Broadband Response and Weak‐Light Imaging

ABSTRACT Self‐powered photodetectors (SPPDs) with broadband response and high‐resolution weak‐light imaging capabilities are crucial for next‐generation optoelectronics. Quasi‐two‐dimensional (quasi‐2D) Ruddlesden‐Popper perovskites are promising candidates, but their solution‐processed films typically suffer from multiphase coexistence and random crystallographic orientation, which severely impede vertical charge transport. Here, we report a facile temperature‐gradient‐free thermal‐pressing‐casting (TGF‐TPC) strategy to fabricate quasi‐2D (FPEA) 2 MA 4 Pb 5 I 16 perovskite films with a phase‐purified composition and a vertically aligned, highly textured structure. This method simultaneously applies uniform temperature and isostatic pressure, synergistically regulating crystallization thermodynamics and kinetics to suppress phase segregation and promote out‐of‐plane grain growth. The resulting films exhibit reduced trap‐state density, suppressed non‐radiative recombination, efficient vertical charge transport, and favorable interfacial energy alignment. Consequently, planar heterojunction SPPDs demonstrate outstanding optoelectronic performances, e.g., remarkable responsivity, ultralow noise, high specific detectivity, and robust stability. Crucially, they achieve high‐fidelity UV–vis–NIR broadband imaging under an ultralow power density of 50 nW cm −2 . This work provides a simple and scalable processing paradigm to control the microstructure of quasi‐2D perovskites, unlocking their potential for advanced low‐power photodetection and imaging.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-29
DOI
https://doi.org/10.1002/adfm.78797
Primary Topic
Perovskite Materials and Applications
Type
article
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article

Phase‐Purified and Highly Textured 2D Perovskite ( n = 5) Photodetectors Grown via a Temperature‐Gradient‐Free Thermal‐Pressing‐Casting Strategy for Broadband Response and Weak‐Light Imaging

Guanglu Zhu, Haohai Yu, 崔得良, Gang Lian et al.
Advanced Functional Materials
Perovskite Materials and Applications
article

Phase‐Purified and Highly Textured 2D Perovskite ( n = 5) Photodetectors Grown via a Temperature‐Gradient‐Free Thermal‐Pressing‐Casting Strategy for Broadband Response and Weak‐Light Imaging

Guanglu Zhu, Haohai Yu, 崔得良, Gang Lian, Yongzhen Huang, Kaiwen Meng, Qilong Wang
article en

Abstract

ABSTRACT Self‐powered photodetectors (SPPDs) with broadband response and high‐resolution weak‐light imaging capabilities are crucial for next‐generation optoelectronics. Quasi‐two‐dimensional (quasi‐2D) Ruddlesden‐Popper perovskites are promising candidates, but their solution‐processed films typically suffer from multiphase coexistence and random crystallographic orientation, which severely impede vertical charge transport. Here, we report a facile temperature‐gradient‐free thermal‐pressing‐casting (TGF‐TPC) strategy to fabricate quasi‐2D (FPEA) 2 MA 4 Pb 5 I 16 perovskite films with a phase‐purified composition and a vertically aligned, highly textured structure. This method simultaneously applies uniform temperature and isostatic pressure, synergistically regulating crystallization thermodynamics and kinetics to suppress phase segregation and promote out‐of‐plane grain growth. The resulting films exhibit reduced trap‐state density, suppressed non‐radiative recombination, efficient vertical charge transport, and favorable interfacial energy alignment. Consequently, planar heterojunction SPPDs demonstrate outstanding optoelectronic performances, e.g., remarkable responsivity, ultralow noise, high specific detectivity, and robust stability. Crucially, they achieve high‐fidelity UV–vis–NIR broadband imaging under an ultralow power density of 50 nW cm −2 . This work provides a simple and scalable processing paradigm to control the microstructure of quasi‐2D perovskites, unlocking their potential for advanced low‐power photodetection and imaging.

Advanced Functional Materials
Shandong University (CN)
Affordable and clean energy
Openalex Percentile: Top 22%
Perovskite Materials and Applications
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Phase‐Purified and Highly Textured 2D Perovskite ( n = 5) Photodetectors Grown via a Temperature‐Gradient‐Free Thermal‐Pressing‐Casting Strategy for Broadband Response and Weak‐Light Imaging — Guanglu Zhu, Haohai Yu, et al. · Advanced Functional Materials (2026) | TGRS Research Map | TGRS