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Direct observation of Tomonaga-Luttinger-liquid state in carbon nanotubes at low temperatures

机译:在低温下直接观察碳纳米管中的Tomonaga-Luttinger-液态

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The electronic transport properties of conventional three-dimensional metals are successfully described by Fermi-liquid theory. But when the dimensionality of such a system is reduced to one, the Fermi-liquid state becomes unstable to Coulomb interactions, and the conduction electrons should instead behave according to Tomonaga-Luttinger-liquid (TLL) theory. Such a state reveals itself through interaction-dependent anomalous exponents in the correlation functions, density of states and momentum distribution of the electrons. Metallic single-walled carbon nanotubes (SWNTs) are considered to be ideal one-dimensional systems for realizing TLL states. Indeed, the results of transport measurements on metal-SWNT and SWNT-SWNT junctions have been attributed to the effects of tunnelling into or between TLLs, although there remains some ambiguity in these interpretations. Direct observations of the electronic states in SWNTs are therefore needed to resolve these uncertainties. Here we report angle-integrated photoemission measurements of SWNTs. Our results reveal an oscillation in the π-electron density of states owing to one-dimensional van Hove singularities, confirming the one-dimensional nature of the valence band. The spectral function and intensities at the Fermi level both exhibit power-law behaviour (with almost identical exponents) in good agreement with theoretical predictions for the TLL state in SWNTs.
机译:费米液体理论成功地描述了常规三维金属的电子传输性能。但是,当这样的系统的维数减小到1时,费米-液态对于库仑相互作用变得不稳定,并且传导电子应该根据Tomonaga-Luttinger-liquid(TLL)理论起作用。这种状态通过相关函数,状态密度和电子动量分布中依赖于相互作用的异常指数来显示。金属单壁碳纳米管(SWNT)被认为是实现TLL状态的理想一维系统。的确,尽管在这些解释中仍然存在一些歧义,但金属-SWNT和SWNT-SWNT结上的传输测量结果已归因于隧穿进入TLL或在TLL之间。因此,需要直接观察单壁碳纳米管中的电子状态以解决这些不确定性。在这里,我们报告单壁碳纳米管的角度积分光发射测量。我们的结果揭示了由于一维范霍夫奇异性导致的π电子密度态的振荡,证实了价带的一维性质。费米能级的谱函数和强度都表现出幂律行为(具有几乎相同的指数),与SWNTs中TLL状态的理论预测非常吻合。

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