Cherepanov Dmitry, Kostrov Andrei, Gostev Fedor, Shelaev Ivan, Motyakin Mikhail, Kochev Sergei, Kabachii Yuriy, Nadtochenko Victor
N.N. Semenov Federal Research Center for Chemical Physics, RAS, Kosygin St. 4, 119991 Moscow, Russia.
A.N. Nesmeyanov Institute of Organoelement Compounds, RAS, Vavilov St. 28, 119991 Moscow, Russia.
Nanomaterials (Basel). 2021 Nov 9;11(11):3007. doi: 10.3390/nano11113007.
For the first time, a specific time-delayed peak was registered in the femtosecond transient absorption (TA) spectra of ZnCdS/ZnS (x~0.5) alloy quantum dots (QDs) doped with Mn, which was interpreted as the electrochromic Stark shift of the band-edge exciton. The time-delayed rise and decay kinetics of the Stark peak in the manganese-doped QDs significantly distinguish it from the kinetics of the Stark peak caused by exciton-exciton interaction in the undoped QDs. The Stark shift in the Mn-doped QDs developed at a 1 ps time delay in contrast to the instantaneous appearance of the Stark shift in the undoped QDs. Simultaneously with the development of the Stark peak in the Mn-doped QDs, stimulated emission corresponding to T-A Mn transition was detected in the subpicosecond time domain. The time-delayed Stark peak in the Mn-doped QDs, associated with the development of an electric field in QDs, indicates the appearance of charge transfer intermediates in the process of exciton quenching by manganese ions, leading to the ultrafast Mn excitation. The usually considered mechanism of the nonradiative energy transfer from an exciton to Mn does not imply the development of an electric field in a QD. Femtosecond TA data were analyzed using a combination of empirical and computational methods. A kinetic scheme of charge transfer processes is proposed to explain the excitation of Mn. The kinetic scheme includes the reduction of Mn by a 1Se electron and the subsequent oxidation of Mn with a hole, leading to the formation of an excited state of manganese.
首次在掺杂锰的ZnCdS/ZnS(x~0.5)合金量子点(QD)的飞秒瞬态吸收(TA)光谱中记录到一个特定的时间延迟峰,该峰被解释为带边激子的电致变色斯塔克位移。掺杂锰的量子点中斯塔克峰的时间延迟上升和衰减动力学与未掺杂量子点中激子-激子相互作用引起的斯塔克峰动力学有显著区别。与未掺杂量子点中斯塔克位移的瞬间出现相反,掺杂锰的量子点中的斯塔克位移在1皮秒的时间延迟下发展。在掺杂锰的量子点中斯塔克峰发展的同时,在亚皮秒时域中检测到了对应于T-A Mn跃迁的受激发射。掺杂锰的量子点中的时间延迟斯塔克峰与量子点中电场的发展有关,表明在锰离子猝灭激子的过程中出现了电荷转移中间体,导致了超快的锰激发。通常认为的从激子到锰的非辐射能量转移机制并不意味着量子点中电场的发展。使用经验和计算方法相结合的方式对飞秒TA数据进行了分析。提出了一个电荷转移过程的动力学方案来解释锰的激发。该动力学方案包括用一个1Se电子还原锰,随后用一个空穴氧化锰,导致形成锰的激发态。