Wang Lei, Liu Liu, Zhang Rongxin, Zhou Zixiang, Zhang Xin, Liu Dezheng, Liang Ying, Liang Guijie
Hubei Key Laboratory of Low Dimensional Optoelectronic Materials and Devices, Hubei University of Arts and Science, Xiangyang, China.
Hubei Aerospace Chemical New Material Technology Co., Ltd, Xiangyang 441057, China.
Spectrochim Acta A Mol Biomol Spectrosc. 2024 Nov 5;320:124658. doi: 10.1016/j.saa.2024.124658. Epub 2024 Jun 13.
Owing to the long-lived decay of triplet excited state, extensive efforts have been devoted to efficient triplet generation for applications covering triplet-triplet annihilation for photon upconversion, photocycloaddition and photoredox catalysis. Among the candidates, nanocrystal-molecule complexes have received tremendous attention for triplet generation because of easier spin flip and negligible energy loss during intersystem crossing. However, the triplet energy transfer (TET) from nanocrystals (NCs) to molecules can be very complicated in actual situation due to intricate energy level alignment and inevitable defect states, which often involves various decay pathes of the excited state competing with TET. Understanding the detailed carrier dynamics in such complexes is strongly necessary for related applications. Here, a CdSe-TCA (5-tetracene carboxylic acid) complex with a Type-II like energy level alignment is synthesized through precisely adjusting the dimension of CdSe NC. Based on series of spectral measurements, especially the transient absorption (TA) spectroscopy, the results show various carrier dynamics including hole-transfer-mediated TET, Förster resonance energy transfer (FRET) and carrier trapping. Although the carrier trapping by defect states in CdSe NC is revealed not associated with the TET from CdSe to TCA, the FRET is proved to competing with the TET process. Both the FRET and defect states should be refrained for efficient TET in such complexes. This study could provide further insight for understanding the carrier dynamics competition in NC-molecule complexes for triplet generation and benefit related optoelectronics applications.
由于三重态激发态的长寿命衰变,人们已付出大量努力致力于高效的三重态产生,其应用涵盖用于光子上转换的三重态-三重态湮灭、光环加成和光氧化还原催化。在众多候选材料中,纳米晶体-分子复合物因其在系间窜越过程中更容易发生自旋翻转且能量损失可忽略不计,而在三重态产生方面受到了极大关注。然而,在实际情况中,由于复杂的能级排列和不可避免的缺陷态,从纳米晶体(NCs)到分子的三重态能量转移(TET)可能会非常复杂,这通常涉及激发态的各种衰变路径与TET相互竞争。深入了解此类复合物中详细的载流子动力学对于相关应用来说非常必要。在此,通过精确调整CdSe纳米晶体的尺寸,合成了一种具有类II型能级排列的CdSe-TCA(5-蒽羧酸)复合物。基于一系列光谱测量,特别是瞬态吸收(TA)光谱,结果显示了包括空穴转移介导的TET、Förster共振能量转移(FRET)和载流子俘获在内的各种载流子动力学。尽管CdSe纳米晶体中缺陷态的载流子俘获被发现与从CdSe到TCA的TET无关,但FRET被证明与TET过程相互竞争。在这种复合物中,为了实现高效的TET,FRET和缺陷态都应加以抑制。这项研究可为理解用于三重态产生的NC-分子复合物中的载流子动力学竞争提供进一步的见解,并有益于相关的光电子应用。