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sp 量子缺陷的低温单根碳纳米管光谱学

Low-Temperature Single Carbon Nanotube Spectroscopy of sp Quantum Defects.

机构信息

Department of Chemistry and Biochemistry, North Dakota State University , Fargo, North Dakota 58108, United States.

Chemical and Materials Science Center, National Renewable Energy Laboratory , 1617 Cole Boulevard, Golden, Colorado 80401, United States.

出版信息

ACS Nano. 2017 Nov 28;11(11):10785-10796. doi: 10.1021/acsnano.7b03022. Epub 2017 Oct 5.

Abstract

Aiming to unravel the relationship between chemical configuration and electronic structure of sp defects of aryl-functionalized (6,5) single-walled carbon nanotubes (SWCNTs), we perform low-temperature single nanotube photoluminescence (PL) spectroscopy studies and correlate our observations with quantum chemistry simulations. We observe sharp emission peaks from individual defect sites that are spread over an extremely broad, 1000-1350 nm, spectral range. Our simulations allow us to attribute this spectral diversity to the occurrence of six chemically and energetically distinct defect states resulting from topological variation in the chemical binding configuration of the monovalent aryl groups. Both PL emission efficiency and spectral line width of the defect states are strongly influenced by the local dielectric environment. Wrapping the SWCNT with a polyfluorene polymer provides the best isolation from the environment and yields the brightest emission with near-resolution limited spectral line width of 270 μeV, as well as spectrally resolved emission wings associated with localized acoustic phonons. Pump-dependent studies further revealed that the defect states are capable of emitting single, sharp, isolated PL peaks over 3 orders of magnitude increase in pump power, a key characteristic of two-level systems and an important prerequisite for single-photon emission with high purity. These findings point to the tremendous potential of sp defects in development of room temperature quantum light sources capable of operating at telecommunication wavelengths as the emission of the defect states can readily be extended to this range via use of larger diameter SWCNTs.

摘要

为了揭示芳基功能化(6,5)单壁碳纳米管(SWCNT)sp 缺陷的化学结构与电子结构之间的关系,我们进行了低温单根纳米管光致发光(PL)光谱研究,并将我们的观察结果与量子化学模拟相关联。我们观察到来自单个缺陷位点的尖锐发射峰,其分布在极其宽的 1000-1350nm 光谱范围内。我们的模拟允许我们将这种光谱多样性归因于由于单价芳基基团的化学结合构型的拓扑变化而出现的六个化学上和能量上不同的缺陷状态。缺陷态的 PL 发射效率和光谱线宽都强烈受到局部介电环境的影响。用聚芴聚合物包裹 SWCNT 可以提供与环境的最佳隔离,并产生最亮的发射,其光谱线宽接近分辨率限制为 270μeV,以及与局域声子相关的光谱分辨发射翼。泵浦依赖性研究进一步表明,缺陷态能够在泵浦功率增加 3 个数量级的情况下发出单个尖锐的孤立 PL 峰,这是双能级系统的关键特征,也是具有高纯度的单光子发射的重要前提。这些发现表明,sp 缺陷在开发能够在电信波长下工作的室温量子光源方面具有巨大的潜力,因为通过使用更大直径的 SWCNT,缺陷态的发射可以很容易地扩展到该范围。

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