Chen Zhewei, Wu Junjie, Song Zheheng, Zou Yatao, Hu Jingyun, Li Ya, Song Yuhang, Li Yawen, Bai Guilin, Li Xiang, Zhu Yanan, Zhang Xinping, Wang Xue-Dong, Song Tao, Sun Baoquan
Institute of Functional Nano & Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials & Devices, Soochow University, Suzhou, Jiangsu 215123, P. R. China.
Macau Institute of Materials Science and Engineering, MUST-SUDA Joint Research Center for Advanced Functional Materials, Macau University of Science and Technology, Taipa, Macau 999078, P. R. China.
J Phys Chem Lett. 2023 Sep 21;14(37):8376-8384. doi: 10.1021/acs.jpclett.3c01669. Epub 2023 Sep 14.
Perovskite materials are promising candidates for the implementation of electrically pumped lasers considering the enhanced performance of perovskite-based light-emitting diodes. Nonetheless, current methods of fabricating perovskite optical microcavities require complex patterning technologies to build suitable resonant cavities for perovskite laser emission, burdening the device structure design. To address this issue, we applied inkjet printing, a maskless patterning technique, to directly create spontaneous formations of polycrystalline perovskite microcavity arrays to explore their laser-emitting action. The substrate surface tension was tuned to modulate the perovskite crystallization process in combination with optimization of printing ink recipes. As a result, polycrystalline perovskite microcavity arrays were achieved, contributing to the laser emission at 528 nm with a lasing threshold of 1.37 mJ/cm, while simultaneously achieving high-definition patterning of flexible display. These results clearly illustrate the efficiency of inkjet printing technology in the preparation of polycrystalline perovskite optical microcavities and promote the development of flexible laser arrayed displays, providing a facile process toward the realization of perovskite-cavity laser devices.
考虑到基于钙钛矿的发光二极管性能的提高,钙钛矿材料是实现电泵浦激光器的有前途的候选材料。然而,目前制造钙钛矿光学微腔的方法需要复杂的图案化技术来构建适合钙钛矿激光发射的谐振腔,这给器件结构设计带来了负担。为了解决这个问题,我们应用了喷墨打印技术,一种无掩模图案化技术,直接创建多晶钙钛矿微腔阵列的自发形成,以探索它们的激光发射行为。结合印刷油墨配方的优化,调整衬底表面张力以调节钙钛矿结晶过程。结果,实现了多晶钙钛矿微腔阵列,有助于在528nm处发射激光,激光阈值为1.37mJ/cm,同时实现了柔性显示器的高清晰度图案化。这些结果清楚地说明了喷墨打印技术在制备多晶钙钛矿光学微腔方面的效率,并促进了柔性激光阵列显示器的发展,为实现钙钛矿腔激光器件提供了一种简便的方法。