Zhenxu Lin, Rui Huang, Shulei Li, Mingcheng Panmai, Yi Zhang, Haixia Wu, Jie Song, Zewen Lin, Hongliang Li and Sheng Lan
{"title":"混合CsPbBr3超晶格/Ag微腔实现低阈值连续波泵浦极化激子激光强激子-光子耦合","authors":"Zhenxu Lin, Rui Huang, Shulei Li, Mingcheng Panmai, Yi Zhang, Haixia Wu, Jie Song, Zewen Lin, Hongliang Li and Sheng Lan","doi":"10.1039/D5TC00226E","DOIUrl":null,"url":null,"abstract":"<p >Achieving strong exciton–photon coupling in perovskite microcavities opens new possibilities for continuous-wave (CW) perovskite lasers with ultralow thresholds. A CsPbBr<small><sub>3</sub></small> superlattice (SL), assembled from quantum dots (QDs) with a narrow size distribution, offers both large oscillator strengths and extended exciton dephasing times, rendering it a highly promising platform for enhanced light–matter interactions. Nevertheless, realizing robust exciton–photon coupling in a CsPbBr<small><sub>3</sub></small> SL-based microcavity for low-threshold lasing remains elusive. Here, we demonstrate a hybrid microcavity integrating a CsPbBr<small><sub>3</sub></small> SL with a thin Ag film to boost exciton–photon coupling and achieve CW-pumped polariton lasing. Using an acetone-assisted self-assembly approach, we obtain high-quality CsPbBr<small><sub>3</sub></small> SLs characterized by narrow emission linewidths, large exciton binding energies, diminished exciton–phonon coupling, and highly stable amplified spontaneous emission. Optical scattering and photoluminescence measurements indicate significant coupling between the SL excitons and resonant photon modes in the CsPbBr<small><sub>3</sub></small>/Ag microcavity. We attribute this enhanced light–matter interaction to comparable linewidths of the exciton resonance and photon mode, facilitated by the Ag film. A coupled oscillator model fit yields a Rabi splitting of approximately 225 meV in a large microcavity. Notably, we achieve CW-pumped polariton lasing near the lower polariton branch bottleneck at a low threshold of about 220 W cm<small><sup>−2</sup></small>. Our findings elucidate the fundamental mechanism underlying strong exciton–photon coupling in CsPbX<small><sub>3</sub></small> SL systems and offer a viable strategy for designing CW-pumped polariton lasers with improved performance.</p>","PeriodicalId":84,"journal":{"name":"Journal of Materials Chemistry C","volume":" 21","pages":" 10724-10732"},"PeriodicalIF":5.7000,"publicationDate":"2025-04-23","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Hybrid CsPbBr3 superlattice/Ag microcavity enabling strong exciton–photon coupling for low-threshold continuous-wave pumped polariton lasing†\",\"authors\":\"Zhenxu Lin, Rui Huang, Shulei Li, Mingcheng Panmai, Yi Zhang, Haixia Wu, Jie Song, Zewen Lin, Hongliang Li and Sheng Lan\",\"doi\":\"10.1039/D5TC00226E\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Achieving strong exciton–photon coupling in perovskite microcavities opens new possibilities for continuous-wave (CW) perovskite lasers with ultralow thresholds. 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引用次数: 0
摘要
在钙钛矿微腔中实现强激子-光子耦合为超低阈值连续波(CW)钙钛矿激光器开辟了新的可能性。CsPbBr3超晶格(SL)由具有窄尺寸分布的量子点(QDs)组装而成,提供了大的振荡器强度和延长的激子消相时间,使其成为增强光-物质相互作用的极有前途的平台。然而,在基于CsPbBr3 sl的微腔中实现低阈值激光的鲁棒激子-光子耦合仍然是难以实现的。在这里,我们展示了一个将CsPbBr3 SL与薄银膜集成在一起的混合微腔,以增强激子-光子耦合并实现cw泵浦极化激子激光。利用丙酮辅助自组装方法,我们获得了高质量的CsPbBr3 SLs,其特点是发射线宽窄,激子结合能大,激子-声子耦合减弱,高度稳定的放大自发发射。光学散射和光致发光测量表明,CsPbBr3/Ag微腔中SL激子与共振光子模式之间存在显著的耦合。我们将这种增强的光-物质相互作用归因于银膜促进的激子共振和光子模式的相似线宽。耦合振荡器模型拟合在大微腔中产生约225 meV的拉比分裂。值得注意的是,我们在大约220 W cm−2的低阈值下,在较低的极化子分支瓶颈附近实现了cw泵浦极化子激光。我们的研究结果阐明了CsPbX3 SL系统中强激子-光子耦合的基本机制,并为设计具有更高性能的cw泵浦极化激子激光器提供了可行的策略。
Achieving strong exciton–photon coupling in perovskite microcavities opens new possibilities for continuous-wave (CW) perovskite lasers with ultralow thresholds. A CsPbBr3 superlattice (SL), assembled from quantum dots (QDs) with a narrow size distribution, offers both large oscillator strengths and extended exciton dephasing times, rendering it a highly promising platform for enhanced light–matter interactions. Nevertheless, realizing robust exciton–photon coupling in a CsPbBr3 SL-based microcavity for low-threshold lasing remains elusive. Here, we demonstrate a hybrid microcavity integrating a CsPbBr3 SL with a thin Ag film to boost exciton–photon coupling and achieve CW-pumped polariton lasing. Using an acetone-assisted self-assembly approach, we obtain high-quality CsPbBr3 SLs characterized by narrow emission linewidths, large exciton binding energies, diminished exciton–phonon coupling, and highly stable amplified spontaneous emission. Optical scattering and photoluminescence measurements indicate significant coupling between the SL excitons and resonant photon modes in the CsPbBr3/Ag microcavity. We attribute this enhanced light–matter interaction to comparable linewidths of the exciton resonance and photon mode, facilitated by the Ag film. A coupled oscillator model fit yields a Rabi splitting of approximately 225 meV in a large microcavity. Notably, we achieve CW-pumped polariton lasing near the lower polariton branch bottleneck at a low threshold of about 220 W cm−2. Our findings elucidate the fundamental mechanism underlying strong exciton–photon coupling in CsPbX3 SL systems and offer a viable strategy for designing CW-pumped polariton lasers with improved performance.
期刊介绍:
The Journal of Materials Chemistry is divided into three distinct sections, A, B, and C, each catering to specific applications of the materials under study:
Journal of Materials Chemistry A focuses primarily on materials intended for applications in energy and sustainability.
Journal of Materials Chemistry B specializes in materials designed for applications in biology and medicine.
Journal of Materials Chemistry C is dedicated to materials suitable for applications in optical, magnetic, and electronic devices.
Example topic areas within the scope of Journal of Materials Chemistry C are listed below. This list is neither exhaustive nor exclusive.
Bioelectronics
Conductors
Detectors
Dielectrics
Displays
Ferroelectrics
Lasers
LEDs
Lighting
Liquid crystals
Memory
Metamaterials
Multiferroics
Photonics
Photovoltaics
Semiconductors
Sensors
Single molecule conductors
Spintronics
Superconductors
Thermoelectrics
Topological insulators
Transistors