Electronic evidence of temperature-induced Lifshitz transition and topological nature in ZrTe<sub>5</sub>.

Zhang, Yan; Wang, Chenlu; Yu, Li; Liu, Guodong; Liang, Aiji; Huang, Jianwei; Nie, Simin; Sun, Xuan et al. · Nat Commun · 2017

basic_science · Level V

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Abstract

The topological materials have attracted much attention for their unique electronic structure and peculiar physical properties. ZrTe<sub>5</sub> has host a long-standing puzzle on its anomalous transport properties manifested by its unusual resistivity peak and the reversal of the charge carrier type. It is also predicted that single-layer ZrTe<sub>5</sub> is a two-dimensional topological insulator and there is possibly a topological phase transition in bulk ZrTe<sub>5</sub>. Here we report high-resolution laser-based angle-resolved photoemission measurements on the electronic structure and its detailed temperature evolution of ZrTe<sub>5</sub>. Our results provide direct electronic evidence on the temperature-induced Lifshitz transition, which gives a natural understanding on underlying origin of the resistivity anomaly in ZrTe<sub>5</sub>. In addition, we observe one-dimensional-like electronic features from the edges of the cracked ZrTe<sub>5</sub> samples. Our observations indicate that ZrTe<sub>5</sub> is a weak topological insulator and it exhibits a tendency to become a strong topological insulator when the layer distance is reduced.