1] Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, 21 Nanyang Link, Singapore 637371, Singapore [2].
1] School of Materials Science and Engineering, Nanyang Technological University, Nanyang Avenue, Singapore 639798, Singapore [2] Energy Research Institute @NTU (ERI@N), Research Techno Plaza, X-Frontier Block, Level 5, 50 Nanyang Drive, Singapore 637553, Singapore [3] Singapore-Berkeley Research Initiative for Sustainable Energy, 1 Create Way, Singapore 138602, Singapore [4].
Nat Mater. 2014 May;13(5):476-80. doi: 10.1038/nmat3911. Epub 2014 Mar 16.
Low-temperature solution-processed materials that show optical gain and can be embedded into a wide range of cavity resonators are attractive for the realization of on-chip coherent light sources. Organic semiconductors and colloidal quantum dots are considered the main candidates for this application. However, stumbling blocks in organic lasing include intrinsic losses from bimolecular annihilation and the conflicting requirements of high charge carrier mobility and large stimulated emission; whereas challenges pertaining to Auger losses and charge transport in quantum dots still remain. Herein, we reveal that solution-processed organic-inorganic halide perovskites (CH3NH3PbX3 where X = Cl, Br, I), which demonstrated huge potential in photovoltaics, also have promising optical gain. Their ultra-stable amplified spontaneous emission at strikingly low thresholds stems from their large absorption coefficients, ultralow bulk defect densities and slow Auger recombination. Straightforward visible spectral tunability (390-790 nm) is demonstrated. Importantly, in view of their balanced ambipolar charge transport characteristics, these materials may show electrically driven lasing.
在实现片上相干光源方面,具有光学增益且可嵌入各种腔共振器的低温溶液处理材料具有吸引力。有机半导体和胶体量子点被认为是该应用的主要候选材料。然而,有机激光的障碍包括双分子湮没引起的固有损耗以及对高电荷载流子迁移率和大受激发射的相互矛盾的要求;而与量子点中的俄歇损耗和电荷输运相关的挑战仍然存在。在此,我们揭示了在光伏领域表现出巨大潜力的溶液处理的有机-无机卤化物钙钛矿(CH3NH3PbX3,其中 X = Cl、Br、I)也具有有前途的光学增益。它们在极低的阈值下具有超稳定的放大自发发射,这源于其大的吸收系数、超低的体缺陷密度和缓慢的俄歇复合。实现了简单的可见光谱可调谐性(390-790nm)。重要的是,鉴于它们平衡的双极电荷输运特性,这些材料可能表现出电驱动的激光。