Abstract:Topological semimetals provide new opportunities for exploring new thermoelectric phenomena, because of their exotic and nontrivial electronic structure topology around the Fermi surface. In this study, we report on the discovery of giant transverse and longitudinal magneto-thermoelectric (MTE) effects in Mg3Bi2, which is predicted to be a type-II nodal-line semimetal in the absence of spin-orbit coupling (SOC). The maximum transverse power factor is 2182 μWm −1 K −2 at 13.5 K and 6 Tesla. The longitudinal pow… Show more
“…Fermi energy tuning) was effective in suppressing Mg vacancies and optimizing carrier mobility. 19 The electron mobility increased by an order of magnitude, boosting magnetoresistance (MR) by 940% and vastly improving both the transverse thermopower (127 μV K −1 ) and transverse power factor (2182 μW m −1 K −2 ) at 13.5 K and 6 Tesla, rendering the Mg 3+ δ Bi 2 a promising transverse thermoelectric material. However, two open questions remain.…”
To achieve thermoelectric energy conversion, a large transverse thermoelectric effect in topological materials is crucial. However, a simple and effective way to manipulate the performance of transverse thermoelectric materials still...
“…Fermi energy tuning) was effective in suppressing Mg vacancies and optimizing carrier mobility. 19 The electron mobility increased by an order of magnitude, boosting magnetoresistance (MR) by 940% and vastly improving both the transverse thermopower (127 μV K −1 ) and transverse power factor (2182 μW m −1 K −2 ) at 13.5 K and 6 Tesla, rendering the Mg 3+ δ Bi 2 a promising transverse thermoelectric material. However, two open questions remain.…”
To achieve thermoelectric energy conversion, a large transverse thermoelectric effect in topological materials is crucial. However, a simple and effective way to manipulate the performance of transverse thermoelectric materials still...
“…S10g (ESI †). The PF first increases and then decreases with the increasing magnetic field, reaching the highest value of 71.5 mW cm À1 K À2 at 0.2 T. The PF under a magnetic field of the x = 1 sample is markedly higher than that of other cryogenic TE materials, such as Cd 3 As 2 (14 mW cm À1 K À2 , 9 T), 58 Mg 3 Sb 2 (30 mW cm À1 K À2 , 13 T), 59 etc. Fig.…”
In this work, the porous Bi0.85Sb0.15/xvol% SbCl3 (x = 0,0.5,1,1.5,2) materials were prepared by melt-spinning combined with hot pressing and annealing, and the effect of SbCl3 doping as well...
“…As shown in Figure 1a, Mg 3 Bi 2 has a trigonal crystal structure (space group P3m1) with the lattice constants a ¼ b ¼ 4.702 Å and c ¼ 7.436 Å. [20][21][22][23][24][25][26][27][28] The centrosymmetric unit cell contains five alternating Mg and Bi layers stacking along the [001] direction. The bulk Brillouin zone and the projection on (001) surface with high-symmetry points are plotted in Figure 1b.…”
Section: Surface Terminations Of Mg 3 Bimentioning
Kagome compound Mg3Bi2 is theoretically predicted to be a nodal line semimetal while the inclusion of spin–orbit coupling (SOC) causes a transition to strong topological insulator. The electronic energy dispersion and spin polarization of thus attained surface states are sensitive to the surface terminations, which are not experimentally verified yet. Herein, the major Mg terminations with scanning tunneling microscopy (STM) are identified and the electronic structures near and above the Fermi level are further investigated. It is found that the underlying Bi layers contribute to the surface states dominantly. The spin‐polarized bulk and surface states may promote low‐dissipation applications for Mg3Bi2.
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