Theoretical prediction of magnetic and noncentrosymmetric Weyl fermion semimetal states in the R-Al-X family of compounds (R=rare earth, Al=aluminium, X=Si, Ge)
Guoqing Chang, Bahadur Singh, Su-Yang Xu, Guang Bian, Shin-Ming Huang,, Chuang-Han Hsu, Ilya Belopolski, Nasser Alidoust, Daniel S. Sanchez, Hao, Zheng, Hong Lu, Xiao Zhang, Yi Bian, Tay-Rong Chang, Horng-Tay Jeng, Arun, Bansil, Han Hsu, Shuang Jia, Titus Neupert, Hsin Lin

TL;DR
This paper predicts a versatile family of RAlX compounds capable of hosting all types of Weyl fermions, offering a tunable platform for exploring diverse topological phenomena in topological semimetals.
Contribution
It introduces the RAlX family as a new class of Weyl semimetals that can realize all Weyl fermion types with tunable electronic and magnetic properties.
Findings
RAlX compounds can host all types of Weyl fermions.
The electronic topology can be tuned by changing rare earth elements.
The family offers a large, tunable platform for topological studies.
Abstract
Weyl semimetals are novel topological conductors that host Weyl fermions as emergent quasiparticles. While the Weyl fermions in high-energy physics are strictly defined as the massless solution of the Dirac equation and uniquely fixed by Lorentz symmetry, there is no such constraint for a topological metal in general. Specifically, the Weyl quasiparticles can arise by breaking either the space-inversion () or time-reversal () symmetry. They can either respect Lorentz symmetry (type-I) or strongly violate it (type-II). To date, different types of Weyl fermions have been predicted to occur only in different classes of materials. In this paper, we present a significant materials breakthrough by identifying a large class of Weyl materials in the RAlX (R=Rare earth, Al, X=Ge, Si) family that can realize all different types of emergent Weyl fermions…
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