论文标题
调整螺旋Luttinger液体中的多体相互作用
Tuning the Many-body Interactions in a Helical Luttinger Liquid
论文作者
论文摘要
在一维(1D)系统中,电子相互作用导致费米液体理论的分解和形成tomonaga-luttinger液体(TLL)。它的多体相关性的强度可以通过单个无量纲参数(Luttinger参数$ k $)来量化,以表征电子动能和静电能之间的竞争。最近,据报道,量子旋转厅(QSH)绝缘子的拓扑边缘状态,严格的1D电子结构具有线性(DIRAC)分散剂和自旋Momentum锁定。在这里,我们表明,这种螺旋Luttinger液体中的多体相互作用可以通过边缘状态的介电环境有效控制。这反映在Luttinger参数$ K $的可调节性中,在晶体的不同边缘不同,并从数十个隧道点处的隧道光谱统计数据中提取到高精度。一维螺旋系统中拓扑结构和多体相关性的相互作用被认为是实现非亚伯派副作用的潜在途径。
In one-dimensional (1D) systems, electronic interactions lead to a breakdown of Fermi liquid theory and the formation of a Tomonaga-Luttinger Liquid (TLL). The strength of its many-body correlations can be quantified by a single dimensionless parameter, the Luttinger parameter $K$, characterising the competition between the electrons' kinetic and electrostatic energies. Recently, signatures of a TLL have been reported for the topological edge states of quantum spin Hall (QSH) insulators, strictly 1D electronic structures with linear (Dirac) dispersion and spin-momentum locking. Here we show that the many-body interactions in such helical Luttinger Liquid can be effectively controlled by the edge state's dielectric environment. This is reflected in a tunability of the Luttinger parameter $K$, distinct on different edges of the crystal, and extracted to high accuracy from the statistics of tunnelling spectra at tens of tunneling points. The interplay of topology and many-body correlations in 1D helical systems has been suggested as a potential avenue towards realising non-Abelian parafermions.