论文标题

胶体CDSE量子环的光学和电子特性

Optical and electronic properties of colloidal CdSe Quantum Rings

论文作者

Xiao, James, Liu, Yun, Steinmetz, Violette, Çağlar, Mustafa, Hugh, Jeffrey Mc, Baikie, Tomi, Gauriot, Nicolas, Nguyen, Malgorzata, Ruggeri, Edoardo, Andaji-Garmaroudi, Zahra, Stranks, Samuel D., Legrand, Laurent, Barisien, Thierry, Friend, Richard H., Greenham, Neil C., Rao, Akshay, Pandya, Raj

论文摘要

发光的胶体CDSE纳米是一种新型的半导体结构,由于其非平凡的环形形状引起的独特物理学可能引起了兴趣。但是,这些具有复杂拓扑结构的材料的激子特性和动力学尚不清楚。在这里,我们使用飞秒振动光谱,温度分辨光致发光(PL)和单个颗粒测量的组合来研究这些材料。我们发现,通过穿孔血小板的中心将CDSE纳米板片转化为纳米片,发射寿命会降低,并且由于环尺寸和厚度的集合变化而引起的发射光谱扩大。与血小板相比(〜30%)相比,纳米菌的PL量子产率降低归因于以下方面的增强耦合:(i)在200 cm-1和(ii)带负电荷的昂克陷阱的激子和CDSE lo-Phonons之间的耦合,从而使纳米含量高表面电荷(〜-50 mV)。这些弱发射的陷阱部位的种群在低温下相对于激发子发射时的陷阱发射增加了发射特性。我们的结果提供了纳米谱中激子的性质以及声子和表面电荷在解释PL频谱的广泛形状以及PL量子屈服损失的起源方面的影响的详细图片。此外,他们认为纳米纳米的激子特性不仅是环形形状的结果,而是通过刺穿血小板中心引入的陷阱的结果。

Luminescent colloidal CdSe nanorings are a new type of semiconductor structure that have attracted interest due to the potential for unique physics arising from their non-trivial toroidal shape. However, the exciton properties and dynamics of these materials with complex topology are not yet well understood. Here, we use a combination of femtosecond vibrational spectroscopy, temperature-resolved photoluminescence (PL), and single particle measurements to study these materials. We find that on transformation of CdSe nanoplatelets to nanorings, by perforating the center of platelets, the emission lifetime decreases and the emission spectrum broadens due to ensemble variations in the ring size and thickness. The reduced PL quantum yield of nanorings (~10%) compared to platelets (~30%) is attributed to an enhanced coupling between: (i) excitons and CdSe LO-phonons at 200 cm-1 and (ii) negatively charged selenium-rich traps which give nanorings a high surface charge (~-50 mV). Population of these weakly emissive trap sites dominates the emission properties with an increased trap emission at low temperatures relative to excitonic emission. Our results provide a detailed picture of the nature of excitons in nanorings and the influence of phonons and surface charge in explaining the broad shape of the PL spectrum and the origin of PL quantum yield losses. Furthermore, they suggest that the excitonic properties of nanorings are not solely a consequence of the toroidal shape but are also a result of traps introduced by puncturing the platelet center.

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