Multiphoton excited luminescence is of paramount importance in the field of optical detection and biological photonics. Self-trapped exciton (STE) emission with self-absorption-free advantages provide a choice for multiphoton excited luminescence. Herein, multiphoton excited singlet/triplet mixed STE emission with a large full width at half-maximum (617âmeV) and Stokes shift (1.29âeV) has been demonstrated in single-crystalline ZnO nanocrystals. Temperature dependent steady state, transient state and time-resolved electron spin resonance spectra demonstrate a mixture of singlet (63%) and triplet (37%) mixed STE emission, which contributes to a high photoluminescence quantum yield (60.5%). First-principles calculations suggest 48.34âmeV energy per exciton stored by phonons in the distorted lattice of excited states, and 58âmeV singlet-triplet splitting energy for the nanocrystals being consistent with the experimental measurements. The model clarifies long and controversial debates on ZnO emission in visible region, and the multiphoton excited singlet/triplet mixed STE emission is also observed.
Multiphoton excited singlet/triplet mixed self-trapped exciton emission.
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作者:Zhou Rui, Sui Laizhi, Liu Xinbao, Liu Kaikai, Guo Dengyang, Zhao Wenbo, Song Shiyu, Lv Chaofan, Chen Shu, Jiang Tianci, Cheng Zhe, Meng Sheng, Shan Chongxin
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2023 | 起止号: | 2023 Mar 10; 14(1):1310 |
| doi: | 10.1038/s41467-023-36958-3 | ||
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