Coherent transformation of metal halide perovskites
Когерентная трансформация перовскитов на основе металлических галогенидов
2026-07-10
SCID: 54.1/nn2yhqkv
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additive–precursor interactionin situ multiwavelength absorptionmetal-halide perovskitesslot-die coated mini-modulestransformation index (TI)
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Abstract (AI)
Metal-halide perovskites offer high optoelectronic performance but translating laboratory efficiencies into controllable, reproducible processes remains challenging. Perovskite crystallization is tracked by in situ multiwavelength absorption to show that coherent, layer-by-layer conversion of low-n intermediates to three-dimensional perovskite, quantified by a transformation index (TI), correlates with device quality. TI displays a Sabatier-type dependence on additive–precursor interaction strength and concentration, defining an engineering window for reproducible film formation. Within this window, post-treatment-free devices reach a champion power conversion efficiency of 26.40% with improved stability and reduced device scatter at laboratory scale. TI is extractable from an inline optical readout and provides a measurable metric for additive screening and process tuning. Its applicability to scalable deposition is further validated through slot-die coated mini-modules, offering a practical pathway for inline process control. Metal-halide perovskites promise high performance but achieving controllable and reproducible fabrication is difficult. Yang et al. track crystallization in real time and define a measurable index that guides processing conditions to produce efficient, stable devices with scalable control.
Key Findings
1
A transformation index (TI) quantifies this coherent conversion and correlates with device quality.
2
In situ multiwavelength absorption reveals coherent, layer-by-layer conversion of low-n intermediates to 3D perovskite during crystallization.
3
TI is extractable from an inline optical readout, enabling measurable additive screening and process tuning for scalable deposition, validated on slot-die coated mini-modules.
4
TI shows a Sabatier-type dependence on additive–precursor interaction strength and concentration, defining an engineering window for reproducible film formation.
5
Within the defined TI window, post-treatment-free devices achieve a champion power conversion efficiency of 26.40% with improved stability and reduced device scatter at laboratory scale.
Research Object
Metal-halide perovskite thin films undergoing crystallization and layer-by-layer conversion from low-n intermediates to three-dimensional perovskite
Research Subject
Coherent transformation dynamics quantified by a transformation index (TI)—including the layer-by-layer conversion mechanism, its dependence on additive–precursor interaction strength and concentration, and correlation of TI with film quality, device efficiency, stability, and process scalability/inline control
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2026-07-10
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