Department of Materials Science and Engineering, BK21 PLUS SNU Materials Division for Educating Creative Global Leaders, Seoul National University, 1 Gwanak-ro, Gwanak-gu, Seoul, 08826, Republic of Korea.
Department of Materials Science and Engineering, Research Institute of Advanced Materials, BK21 PLUS SNU Materials Division for Educating Creative Global Leaders, Seoul National University, 1 Gwanak-ro, Gwanak-gu, Seoul, 08826, Republic of Korea.
Adv Mater. 2018 Oct;30(42):e1704587. doi: 10.1002/adma.201704587. Epub 2018 Jan 25.
Metal halide perovskites (MHPs) have numerous advantages as light emitters such as high photoluminescence quantum efficiency with a direct bandgap, very narrow emission linewidth, high charge-carrier mobility, low energetic disorder, solution processability, simple color tuning, and low material cost. Based on these advantages, MHPs have recently shown unprecedented radical progress (maximum current efficiency from 0.3 to 42.9 cd A ) in the field of light-emitting diodes. However, perovskite light-emitting diodes (PeLEDs) suffer from intrinsic instability of MHP materials and instability arising from the operation of the PeLEDs. Recently, many researchers have devoted efforts to overcome these instabilities. Here, the origins of the instability in PeLEDs are reviewed by categorizing it into two types: instability of (i) the MHP materials and (ii) the constituent layers and interfaces in PeLED devices. Then, the strategies to improve the stability of MHP materials and PeLEDs are critically reviewed, such as A-site cation engineering, Ruddlesden-Popper phase, suppression of ion migration with additives and blocking layers, fabrication of uniform bulk polycrystalline MHP layers, and fabrication of stable MHP nanoparticles. Based on this review of recent advances, future research directions and an outlook of PeLEDs for display applications are suggested.
金属卤化物钙钛矿 (MHPs) 作为发光体具有许多优点,例如具有直接带隙的高光致发光量子效率、非常窄的发射线宽、高电荷载流子迁移率、低能无序、溶液加工性、简单的颜色调谐和低材料成本。基于这些优点,MHPs 在发光二极管领域最近取得了前所未有的重大进展(最大电流效率从 0.3 到 42.9 cd A )。然而,钙钛矿发光二极管 (PeLED) 受到 MHP 材料固有不稳定性以及 PeLED 工作引起的不稳定性的影响。最近,许多研究人员致力于克服这些不稳定性。在这里,通过将其分类为两种类型来综述 PeLED 中的不稳定性的起源:(i)MHP 材料的不稳定性和(ii)PeLED 器件中的组成层和界面的不稳定性。然后,批判性地回顾了提高 MHP 材料和 PeLED 稳定性的策略,例如 A 位阳离子工程、Ruddlesden-Popper 相、添加剂和阻挡层抑制离子迁移、制造均匀的多晶 MHP 层以及制造稳定的 MHP 纳米粒子。基于对这些最新进展的回顾,提出了未来的研究方向和 PeLED 在显示应用中的展望。