Nishihara Taishi, Takakura Akira, Shimasaki Masafumi, Matsuda Kazunari, Tanaka Takeshi, Kataura Hiromichi, Miyauchi Yuhei
Institute of Advanced Energy, Kyoto University, Uji 611-0011, Kyoto, Japan.
Nanomaterials Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba 305-8565, Ibaraki, Japan.
Nanophotonics. 2022 Jan 12;11(5):1011-1020. doi: 10.1515/nanoph-2021-0728. eCollection 2022 Feb.
Assemblies of single-walled carbon nanotubes with a specific chiral structure are promising future optofunctional materials because of their strong light-matter coupling arising from sharp optical resonances of quasi-one-dimensional excitons. Their strong optical resonances, which lie in the infrared-to-visible wavelength region, can be selected by their chiralities, and this selectivity promises a wide range of applications including photonic and thermo-optic devices. However, the broadband complex optical spectra of single-chirality carbon nanotube assemblies are scarce in the literature, which has prevented researchers and engineers from designing devices using them. Here, we experimentally determine broadband complex refractive index spectra of single-chirality carbon nanotube assemblies. Free-standing carbon nanotube membranes and those placed on sapphire substrates were fabricated via filtration of the nanotube solution prepared by the separation method using gel chromatography. Transmission and reflection spectra were measured in the mid-infrared to visible wavelength region, and the complex refractive indices of nanotube assemblies were determined as a function of photon energy. The real and imaginary parts of the refractive indices of the nanotube membrane with a bulk density of 1 g cm at the first subband exciton resonance were determined to be approximately 2.7-3.6 and 1.3i-2.4i, respectively. We propose an empirical formula that phenomenologically describes the complex refractive index spectra of various single-chirality nanotube membranes, which can facilitate the design of photonic devices using carbon nanotubes as the material.
具有特定手性结构的单壁碳纳米管组装体是很有前景的未来光功能材料,因为准一维激子的尖锐光学共振会产生强烈的光与物质的耦合。它们位于红外到可见光波长区域的强烈光学共振可以通过其手性来选择,这种选择性预示着包括光子和热光器件在内的广泛应用。然而,文献中关于单一手性碳纳米管组装体的宽带复光学光谱却很稀少,这使得研究人员和工程师无法使用它们来设计器件。在此,我们通过实验确定了单一手性碳纳米管组装体的宽带复折射率光谱。通过过滤使用凝胶色谱分离法制备的纳米管溶液,制备了独立的碳纳米管膜以及置于蓝宝石衬底上的碳纳米管膜。在中红外到可见光波长区域测量了透射和反射光谱,并确定了纳米管组装体的复折射率作为光子能量的函数。在第一个子带激子共振处,体密度为1 g/cm³的纳米管膜的折射率实部和虚部分别确定为约2.7 - 3.6和1.3i - 2.4i。我们提出了一个经验公式,从现象学角度描述各种单一手性纳米管膜的复折射率光谱,这有助于以碳纳米管为材料设计光子器件。