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ZnSe:Mn DMS 纳米带的自旋激子相互作用及相关微光致发光光谱。

Spin-exciton interaction and related micro-photoluminescence spectra of ZnSe:Mn DMS nanoribbon.

机构信息

Beijing Key Laboratory of Nanophotonics and Ultrafine Optoelectronic Systems, School of Physics, Beijing Institute of Technology, Beijing100081, People's Republic of China.

出版信息

Nanotechnology. 2017 Mar 10;28(10):105202. doi: 10.1088/1361-6528/aa58f1. Epub 2017 Jan 12.

Abstract

For their spintronic applications the magnetic and optical properties of diluted magnetic semiconductors (DMS) have been studied widely. However, the exact relationships between the magnetic interactions and optical emission behaviors in DMS are not well understood yet due to their complicated microstructural and compositional characters from different growth and preparation techniques. Manganese (Mn) doped ZnSe nanoribbons with high quality were obtained by using the chemical vapor deposition (CVD) method. Successful Mn ion doping in a single ZnSe nanoribbon was identified by elemental energy-dispersive x-ray spectroscopy mapping and micro-photoluminescence (PL) mapping of intrinsic d-d optical transition at 580 nm, i.e. the transition of T ( G) →  A ( s),. Besides the d-d transition PL peak at 580 nm, two other PL peaks related to Mn ion aggregates in the ZnSe lattice were detected at 664 nm and 530 nm, which were assigned to the d-d transitions from the Mn-Mn pairs with ferromagnetic (FM) coupling and antiferromagnetic (AFM) coupling, respectively. Moreover, AFM pair formation goes along with strong coupling with acoustic phonon or structural defects. These arguments were supported by temperature-dependent PL spectra, power-dependent PL lifetimes, and first-principle calculations. Due to the ferromagnetic pair existence, an exciton magnetic polaron (EMP) is formed and emits at 460 nm. Defect existence favors the AFM pair, which also can account for its giant enhancement of spin-orbital coupling and the spin Hall effect observed in PRL 97, 126603(2006) and PRL 96, 196404(2006). These emission results of DMS reflect their relation to local sp-d hybridization, spin-spin magnetic coupling, exciton-spin or phonon interactions covering structural relaxations. This kind of material can be used to study the exciton-spin interaction and may find applications in spin-related photonic devices besides spintronics.

摘要

对于其自旋电子学应用,已广泛研究了稀磁半导体(DMS)的磁和光学性质。然而,由于不同生长和制备技术带来的复杂微观结构和组成特性,DMS 中的磁相互作用和光发射行为之间的确切关系仍未得到很好的理解。通过化学气相沉积(CVD)方法获得了高质量的锰(Mn)掺杂 ZnSe 纳米带。通过元素能量色散 X 射线光谱映射和 580nm 本征 d-d 光学跃迁的微光致发光(PL)映射成功地识别了单个 ZnSe 纳米带中的 Mn 离子掺杂,即 T (G)→A (s)的跃迁。除了 580nm 的 d-d 跃迁 PL 峰之外,还在 ZnSe 晶格中的 Mn 离子聚集体处检测到两个与 Mn 离子相关的其他 PL 峰,分别位于 664nm 和 530nm,它们分别被分配给具有铁磁(FM)耦合和反铁磁(AFM)耦合的 Mn-Mn 对的 d-d 跃迁。此外,AFM 对的形成伴随着与声子或结构缺陷的强耦合。这些论点得到了温度相关的 PL 光谱、功率相关的 PL 寿命和第一性原理计算的支持。由于铁磁对的存在,形成了激子磁极化子(EMP)并在 460nm 处发射。缺陷的存在有利于 AFM 对,这也可以解释在 PRL 97,126603(2006)和 PRL 96,196404(2006)中观察到的自旋轨道耦合和自旋霍尔效应的巨大增强。DMS 的这些发射结果反映了它们与局部 sp-d 杂化、自旋-自旋磁耦合、激子-自旋或声子相互作用以及结构弛豫有关。这种材料可用于研究激子-自旋相互作用,并可能在自旋相关的光子器件中得到应用,而不仅仅是在自旋电子学中。

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