Inorganic–Organic Multicoating Layer Encapsulation of Formamidine Lead Halide Perovskite Quantum Dots for Lighting Applications

材料科学 量子点 甲脒 钙钛矿(结构) 光致发光 纳米技术 卤化物 复合数 光电子学 量子产额 三乙氧基硅烷 化学稳定性 共价键 纳米结构 自组装 发光二极管 光子学 化学工程 聚合 油胺 纳米晶 封装(网络) 甲基丙烯酸酯 耐久性 可见光谱
作者
L. Chung,Andi Magattang Gafur Muchlis,Po-Chun Li,Yan Lai,Yuan-Hong Chen,Jung‐An Cheng,Chun Che Lin
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:18 (7): 11912-11922 被引量:2
标识
DOI:10.1021/acsami.5c24129
摘要

High Resolution Image Download MS PowerPoint Slide Pure-green formamidinium lead bromide (FAPbBr 3 ) perovskite quantum dots (PQDs) are particularly attractive for display and lighting applications. However, their inherent instability and processing challenges hinder their widespread application and commercialization. The instability of PQDs under exposure to light, heat, water, and oxygen is primarily attributed to their low formation energy, leading to phase transformations, agglomeration, and degradation, which negatively impact their optical properties. To address these challenges, this study proposes a dual-interface encapsulation strategy that integrates inorganic–organic synergy and covalent surface coupling into a single hierarchical framework. In this work, we present a cost-effective hierarchical multicoating strategy for stabilizing pure-green FAPbBr 3 PQDs using industrially accessible stabilization agents, namely SiO x and dicyclopentanyl methacrylate (513M). Specifically, this research utilizes (3-aminopropyl) triethoxysilane (APTES) as a coupling agent ligand and tetraethoxysilane to uniformly coat the PQDs by SiO x . Following this, 513M, a monomer, is radically polymerized on the surface of the SiO x -coated PQDs to form a secondary shell layer. The initial coating enhances the PQDs’ resistance to environmental factors, while the secondary layer (a hydrophobic polymer) further improves environmental stability without compromising the PQDs' structure during polymerization. The resulting FAPbBr 3 @SiO x @513M composite material, resulted in powder form, significantly improves the PQDs’ durability against environmental conditions while maintaining excellent optical properties, including emission at ∼532 nm, a full width at half-maximum of ≤28 nm, and a photoluminescence quantum yield of >50%, demonstrating that robust environmental protection can be achieved without relying on record-high optical parameters or costly materials. Owing to its use of low-cost, scalable materials and pure-green emissive PQDs, this multicoating strategy offers a realistic pathway toward industrially viable, solid-state PQD materials for optoelectronic applications.
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