scholarly journals Author Correction: Strain-tunable triple point Fermions in diamagnetic rare-earth half-Heusler alloys

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Anupam Bhattacharya ◽  
Vishal Bhardwaj ◽  
Brajesh K. Mani ◽  
Jayanta K. Dutt ◽  
Ratnamala Chatterjee
2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Anupam Bhattacharya ◽  
Vishal Bhardwaj ◽  
Brajesh K Mani ◽  
Jayanta K Dutt ◽  
Ratnamala Chatterjee

AbstractTopologically non-trivial electronic structure is a feature of many rare-earth half-Heusler alloys, which host atoms with high spin-orbit coupling bringing in the non-triviality. In this article, using the first-principles simulations, rare-earth half-Heusler YPdBi, ScPdBi, LaPdBi, LuPdBi, YPtBi and LuPtBi alloys are studied under strain to reveal multiple band inversions associated with topological phase transitions. From our simulations we find that, as a result of first band-inversion, the Brillouin zone of the diamagnetic half-Heusler alloys hosts eight triple points whereas, the second band inversion causes the emergence of sixteen more triple points. These band-inversions are observed to be independent of the spin-orbit coupling and are the reason behind increasing occupation of bismuth 7s orbitals as volume of the unit cell increases. The surface electronic transport in different triple point semi-metallic phases is found to evolve under strain, as the number of Fermi arcs change due to multiple band inversions. Once the second band inversion occurs, further application of tensile strain does not increase the number of triple points and Fermi arcs. However, increasing tensile strain (or decreasing compressive strain) pushes the triple point crossing to higher momenta, making them more effective as source of highly mobile electrons. These observations make a pathway to tune the bulk as well as surface transport through these semi-metals by application of tensile or compressive strain depending on the unstrained relative band-inversion strength of the material.


2017 ◽  
Vol 717 ◽  
pp. 254-259 ◽  
Author(s):  
Anil Aryal ◽  
Abdiel Quetz ◽  
Sudip Pandey ◽  
Igor Dubenko ◽  
Shane Stadler ◽  
...  

2011 ◽  
Vol 311 ◽  
pp. 39-61 ◽  
Author(s):  
Artur Wilson Carbonari ◽  
José Mestnik-Filho ◽  
Rajendra Narain Saxena

Perturbed gamma-gamma angular correlation (PAC) spectroscopy is a precise and highly efficient tool to follow the temperature dependence of local magnetic fields in any material. Its resolution and efficiency does not depend on temperature and therefore can measure local fields at low as well as high temperature with the same accuracy. Due its versatility in using different probe nuclei it can sense the local magnetic fields at different sites in the crystalline structure of materials. In this review, important results obtained with PAC spectroscopy are shown in two classes of materials: transition metal and transition-metal based compounds and rare earth elements and rare-earth-element based compounds using mainly three different probe nuclei:111Cd,181Ta and140Ce. PAC spectroscopy has contributed to the systematic study of the magnetic hyperfine field in impurities in matrices of Fe, Co and Ni as well as in transition-metal based Heusler alloys. It has also provided important contribution to the investigation of magnetism in rare-earth elements and intermetallic compounds. An still open issue concerning the local fields in metallic magnetic compounds and elements is the exchange interaction between the magnetic ions of the host and a dilute magnetic impurity, which acts as a defect in the magnetic lattice. PAC spectroscopy has been contributing to study this problem with success. Also shown in this review is the crucial role of ab-initio first principle calculations in the interpretation of PAC results.


2020 ◽  
Vol 32 (35) ◽  
pp. 355706
Author(s):  
Sudhakara Rao Hari ◽  
V Srinivas ◽  
C R Li ◽  
Y K Kuo

2010 ◽  
Vol 25 (6) ◽  
pp. 573-576 ◽  
Author(s):  
Xiao-Guang LI ◽  
De-Xuan HUO ◽  
Cai-Jun HE ◽  
Shi-Chao ZHAO ◽  
Yan-Fei Lü

2019 ◽  
Author(s):  
Qiang Gao ◽  
Ingo Opahle ◽  
Oliver Gutfleisch ◽  
Hongbin Zhang

2020 ◽  
Vol 186 ◽  
pp. 355-362 ◽  
Author(s):  
Qiang Gao ◽  
Ingo Opahle ◽  
Oliver Gutfleisch ◽  
Hongbin Zhang

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