Bera Krishna Prasad, Hanmandlu Chintam, Lin Hung-I, Ghosh Rapti, Gudelli Vijay Kumar, Lai Chao-Sung, Chu Chih-Wei, Chen Yang-Fang
Department of Physics, Indian Institute of Science, Bangalore, Karnataka 560012, India.
ACS Nano. 2023 Mar 28;17(6):5373-5386. doi: 10.1021/acsnano.2c09522. Epub 2023 Mar 10.
The recently emerged metal-halide hybrid perovskite (MHP) possesses superb optoelectronic features, which have obtained great attention in solid-state lighting, photodetection, and photovoltaic applications. Because of its excellent external quantum efficiency, MHP has promising potential for the manifestation of ultralow threshold optically pumped laser. However, the demonstration of an electrically driven laser remains a challenge because of the vulnerable degradation of perovskite, limited exciton binding energy (E), intensity quenching, and efficiency drop by nonradiative recombinations. In this work, based on the paradigm of integration of Fabry-Perot (F-P) oscillation and resonance energy transfer, we observed an ultralow-threshold (∼250 μWcm) optically pumped random laser from moisture-insensitive mixed dimensional quasi-2D Ruddlesden-Popper phase perovskite microplates. Particularly, we demonstrated an electrically driven multimode laser with a threshold of ∼60 mAcm from quasi-2D RPP by judicious combination of a perovskite/hole transport layer (HTL) and an electron transport layer (ETL) having suitable band alignment and thickness. Additionally, we showed the tunability of lasing modes and color by driving an external electric potential. Performing finite difference time domain (FDTD) simulations, we confirmed the presence of F-P feedback resonance, the light trapping effect at perovskite/ETL, and resonance energy transfer contributing to laser action. Our discovery of an electrically driven laser from MHP opens a useful avenue for developing future optoelectronics.
最近出现的金属卤化物混合钙钛矿(MHP)具有卓越的光电特性,在固态照明、光电探测及光伏应用领域备受关注。因其出色的外量子效率,MHP在实现超低阈值光泵浦激光方面具有广阔潜力。然而,由于钙钛矿易降解、激子束缚能(E)有限、强度猝灭以及非辐射复合导致的效率下降,实现电驱动激光仍是一项挑战。在这项工作中,基于法布里-珀罗(F-P)振荡与共振能量转移相结合的模式,我们在对湿气不敏感的混合维度准二维鲁德尔斯登-波珀相钙钛矿微板中观测到了超低阈值(约250 μW/cm)的光泵浦随机激光。特别地,通过巧妙组合具有合适能带排列和厚度的钙钛矿/空穴传输层(HTL)与电子传输层(ETL),我们从准二维RPP中演示了阈值约为60 mA/cm²的电驱动多模激光。此外,我们通过施加外部电势展示了激光模式和颜色的可调性。进行有限时域差分(FDTD)模拟后,我们证实了F-P反馈共振的存在、钙钛矿/ETL处的光捕获效应以及对激光作用有贡献的共振能量转移。我们从MHP中发现电驱动激光为未来光电子学的发展开辟了一条有益的途径。