Bonding and physical properties of Hume-Rothery compounds with the PtHg4 structure - art. no. 125118

Citation
U. Haussermann et al., Bonding and physical properties of Hume-Rothery compounds with the PtHg4 structure - art. no. 125118, PHYS REV B, 6312(12), 2001, pp. 5118
Citations number
28
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science
Journal title
PHYSICAL REVIEW B
ISSN journal
01631829 → ACNP
Volume
6312
Issue
12
Year of publication
2001
Database
ISI
SICI code
0163-1829(20010315)6312:12<5118:BAPPOH>2.0.ZU;2-9
Abstract
We present a detailed experimental and theoretical study concerning bonding and structural stability of intermetallic electron compounds with the PtHg 4 structure. Due to the simplicity of the structure these compounds represe nt an excellent prototype system for a more general insight into bonding an d stability of the large family of d-sp bonded Hume-Rothery compounds. In p articular, the representatives CrGa4 and MnGa4 were synthesised and their r esistivity, magnetic susceptibility, and bulk modulus measured. We find tha t both compounds are metallic conductors but show a remarkable large differ ence in their temperature independent magnetic susceptibilities. The Value of the Pauli paramagnetic susceptibility of MnGa4 is about 5x10(-9) m(3)/mo l higher than that of CrGa4. The PrHg4 structure of CrGa4 and MnGa4 is stab le up to pressures of about 100 kbar. Full-potential linearized augmented p lane wave calculations reproduced very well the experimental structural pro perties of CrGa4 and MnGa4 and showed strong directional (covalent) bonding between transition metal atoms and Ga atoms in both compounds. The directi onal bonding is due to a large hybridization of the narrow d bands with the Ga sp bands. As a consequence a large pseudogap at the Fermi level for CrG a4 and slightly above the Fermi level for MnGa4 is produced. This pseudogap is characteristic and decisive for structural stability of electron compou nds with the PtHg4 structure. We find that structural stability appears as a competition between optimizing the pseudogap and minimizing the compound equilibrium volume. Therefore, stable electron compounds are confined to sy stems TGa4 with T being a transition metal from soup 6 or 7. A complete sub stitution of Ga for isovalent Al or In is not possible.