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High-Pressure Synthesis of β-Ir4B5 and Determination of the Compressibility of Various Iridium Borides
Author(s) -
Benedikt Petermüller,
Christopher Neun,
Klaus Wurst,
Lkhamsuren Bayarjargal,
Dominik Zimmer,
W. Morgenroth,
M. ÁvalosBorja,
Ignacio Guadalupe BecerrilJuarez,
Martin J. Mühlbauer,
Björn Winkler,
Hubert Huppertz
Publication year - 2018
Publication title -
inorganic chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.348
H-Index - 233
eISSN - 1520-510X
pISSN - 0020-1669
DOI - 10.1021/acs.inorgchem.8b01541
Subject(s) - iridium , orthorhombic crystal system , chemistry , crystallography , lattice constant , crystal structure , boron , density functional theory , compressibility , bulk modulus , single crystal , diffraction , thermodynamics , computational chemistry , organic chemistry , catalysis , physics , optics
A new iridium boride, β-Ir 4 B 5 , was synthesized under high-pressure/high-temperature conditions of 10.5 GPa and 1500 °C in a multianvil press with a Walker-type module. The new modification β-Ir 4 B 5 crystallizes in a new structure type in the orthorhombic space group Pnma (no. 62) with the lattice parameters a = 10.772(2) Å, b = 2.844(1) Å, and c = 6.052(2) Å with R1 = 0.0286, wR2 = 0.0642 (all data), and Z = 2. The structure was determined by single-crystal X-ray and neutron powder diffraction on samples enriched in 11 B. The compound is built up by an alternating stacking of boron and iridium layers with the sequence ABA'B'. Additionally, microcalorimetry, hardness, and compressibility measurements of the binary iridium borides α-Ir 4 B 5 , β-Ir 4 B 5 , Ir 5 B 4 , hexagonal Ir 4 B 3- x and orthorhombic Ir 4 B 3- x were carried out and theoretical investigations based on density function theory (DFT) were employed to complement a comprehensive evaluation of structure-property relations. The incorporation of boron into the structures does not enhance the compressibility but leads to a significant reduction of the bulk moduli and elastic constants in comparison to elemental iridium.

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