Han Joo Hyeong, Seo Jeong Min, Choi San Ha, Noh Jae Geon, Min Jeong Wan, Kim Yu Ri, Kim Hyeon Woo, Cho Sung Beom, Cha Bo Kyung, Im Won Bin
Division of Materials Science and Engineering, Hanyang University, 222 Wangsimni-ro, Seongdong-gu, Seoul, 04763, Republic of Korea.
Department of Materials Science and Engineering, Ajou University, Suwon-si, Gyeonggi-do, 16499, Republic of Korea.
Adv Mater. 2025 Feb;37(7):e2415247. doi: 10.1002/adma.202415247. Epub 2024 Dec 30.
The development of efficient color conversion layers for μ-LED technology faces significant challenges owing to the limitations of materials that require binders. Binders are typically used to ensure uniform film formation in color-conversion layers, but they often cause optical losses, increase layer thickness, and introduce long-term stability issues. To address the limitations of materials requiring binders, cyclopropyltriphenylphosphonium manganese tetrabromide (CPTPMnBr) is synthesized, a novel lead-free metal halide. CPTPMnBr exhibits unique solvent-based plasticity, which enables the formation of uniform films thinner than those formed with binders without the need for either heat treatment or binders. This approach eliminates the performance degradation typically associated with conventional binder systems such as optical losses and stability issues. Structural and optical analyses confirm its high luminescence efficiency and stability, supporting its potential applications in luminescent clays, direct ink writing, pattern printing, and ink drawing. Moreover, its successful application in white light-emitting diodes (WLEDs) and scintillators demonstrates that CPTPMnBr can replace traditional binder systems, offering a solution to overcome the technical challenges in next-generation displays, lighting, and scintillator technologies.
由于需要粘合剂的材料存在局限性,用于μ-LED技术的高效颜色转换层的开发面临重大挑战。粘合剂通常用于确保颜色转换层中形成均匀的薄膜,但它们常常会导致光学损耗、增加层厚度并引发长期稳定性问题。为了解决需要粘合剂的材料的局限性,合成了环丙基三苯基溴化锰鏻(CPTPMnBr),一种新型无铅金属卤化物。CPTPMnBr具有独特的基于溶剂的可塑性,这使得能够形成比使用粘合剂形成的薄膜更薄的均匀薄膜,而无需热处理或粘合剂。这种方法消除了通常与传统粘合剂系统相关的性能下降,如光学损耗和稳定性问题。结构和光学分析证实了其高发光效率和稳定性,支持其在发光粘土、直接墨水书写、图案印刷和墨水绘制中的潜在应用。此外,它在白光发光二极管(WLED)和闪烁体中的成功应用表明,CPTPMnBr可以取代传统的粘合剂系统,为克服下一代显示器、照明和闪烁体技术中的技术挑战提供了一种解决方案。