Beijing National Laboratory for Molecular Sciences (BNLMS), Institute of chemistry, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
University of Chinese Academy of Sciences, Beijing, 100049, P. R. China.
Adv Mater. 2018 Apr;30(15):e1706186. doi: 10.1002/adma.201706186. Epub 2018 Mar 8.
3D organic-inorganic hybrid perovskites have featured high gain coefficients through the electron-hole plasma stimulated emission mechanism, while their 2D counterparts of Ruddlesden-Popper perovskites (RPPs) exhibit strongly bound electron-hole pairs (excitons) at room temperature. High-performance solar cells and light-emitting diodes (LEDs) are reported based on 2D RPPs, whereas light-amplification devices remain largely unexplored. Here, it is demonstrated that ultrafast energy transfer along cascade quantum well (QW) structures in 2D RPPs concentrates photogenerated carriers on the lowest-bandgap QW state, at which population inversion can be readily established enabling room-temperature amplified spontaneous emission and lasing. Gain coefficients measured for 2D RPP thin-films (≈100 nm in thickness) are found about at least four times larger than those for their 3D counterparts. High-density large-area microring arrays of 2D RPPs are fabricated as whispering-gallery-mode lasers, which exhibit high quality factor (Q ≈ 2600), identical optical modes, and similarly low lasing thresholds, allowing them to be ignited simultaneously as a laser array. The findings reveal that 2D RPPs are excellent solution-processed gain materials potentially for achieving electrically driven lasers and ideally for on-chip integration of nanophotonics.
3D 有机-无机杂化钙钛矿通过电子-空穴等离子体受激辐射机制表现出高增益系数,而其 2D 对应物罗多维克-波普钙钛矿 (RPP) 在室温下表现出强束缚的电子-空穴对 (激子)。基于 2D RPP 报道了高性能太阳能电池和发光二极管 (LED),而光放大器件仍在很大程度上未被探索。在这里,证明了在 2D RPP 中的级联量子阱 (QW) 结构中进行超快能量转移,将光生载流子集中在最低能带隙 QW 态上,在该状态下可以容易地建立粒子数反转,从而实现室温下的放大自发发射和激光。测量的 2D RPP 薄膜(厚度约为 100nm)的增益系数发现,其至少比其 3D 对应物大 4 倍。作为回音壁模式激光器制造了高密度大面积的 2D RPP 微环阵列,其具有高品质因数 (Q≈2600)、相同的光学模式和类似的低激光阈值,允许它们同时作为激光阵列被点燃。研究结果表明,2D RPP 是优秀的溶液处理增益材料,有望实现电驱动激光器,并理想地实现纳米光子学的片上集成。