High Field Magnet Laboratory, Institute for Molecules and Materials, Radboud University Nijmegen , Toernooiveld 7, 6525 ED Nijmegen, The Netherlands.
ACS Nano. 2014 Jun 24;8(6):5921-31. doi: 10.1021/nn501026t. Epub 2014 Jun 2.
Light emission of semiconductor nanocrystals is a complex process, depending on many factors, among which are the quantum mechanical size confinement of excitons (coupled electron-hole pairs) and the influence of confined phonon modes and the nanocrystal surface. Despite years of research, the nature of nanocrystal emission at low temperatures is still under debate. Here we unravel the different optical recombination pathways of CdSe/CdS dot-in-rod systems that show an unprecedented number of narrow emission lines upon resonant laser excitation. By using self-assembled, vertically aligned rods and application of crystallographically oriented high magnetic fields, the origin of all these peaks is established. We observe a clear signature of an acoustic-phonon assisted transition, separated from the zero-phonon emission and optical-phonon replica, proving that nanocrystal light emission results from an intricate interplay between bright (optically allowed) and dark (optically forbidden) exciton states, coupled to both acoustic and optical phonon modes.
半导体纳米晶体的发光是一个复杂的过程,取决于许多因素,其中包括激子(耦合电子-空穴对)的量子力学尺寸限制以及受限声子模式和纳米晶体表面的影响。尽管经过多年的研究,低温下纳米晶体发射的性质仍存在争议。在这里,我们揭示了 CdSe/CdS 点在棒中的系统的不同光学复合途径,该系统在共振激光激发下显示出前所未有的数量的窄发射线。通过使用自组装的垂直排列的棒和结晶定向的高磁场的应用,确定了所有这些峰的起源。我们观察到声子辅助跃迁的清晰特征,与零声子发射和光声子复制品分离,证明纳米晶体的发光是由亮(光学允许)和暗(光学禁止)激子态之间的复杂相互作用产生的,与声子和光学声子模式耦合。