The crystal structure of the high-temperature polymorph of α–hexathienyl (α–6T/HT)

1995 ◽  
Vol 10 (9) ◽  
pp. 2170-2173 ◽  
Author(s):  
T. Siegrist ◽  
R.M. Fleming ◽  
R.C. Haddon ◽  
R.A. Laudise ◽  
A.J. Lovinger ◽  
...  

α-hexathienyl (α–6T) is a highly promising material for application in thin film transistor devices. Recently, record high mobilities, together with record high current on/off ratios, have been reported.1 Thus far, structural information on this exciting material is sketchy. The crystal structures of several such hexamers have been investigated, but only with powder samples, since the crystal growth has proven exceedingly difficult.2-5 Powder Rietveld refinements on these materials are severely hampered by the large number of overlapping reflections, preferred orientation, ambiguities in symmetry, etc. Here, we present a crystal structure of the high-temperature polymorph of α–6T (α–6T/HT), as determined from a single-crystal structure analysis. In this polymorph, the hexamer crystallizes in the smallest unit cell so far reported for this material, but the molecule is flat. Extended Hückel theory (EHT) band structure calculations show that α–6T/HT is an indirect gap semiconductor, with the conduction band minimum at Y and the valence band maximum at Γ. The conduction and valence bands both show a remarkable degree of dispersion along X and Y for a molecular crystal. The electronic band structure of this material is strikingly similar to that of the two-dimensional organic superconductors based on bis(ethylenedithio)tetrathiafulvalene (ET), such as κ−(ET)2 Cu(NCS)2.

2015 ◽  
Vol 3 (40) ◽  
pp. 10476-10487 ◽  
Author(s):  
Y. Bouyrie ◽  
C. Candolfi ◽  
V. Ohorodniichuk ◽  
B. Malaman ◽  
A. Dauscher ◽  
...  

The crystal structure, thermal stability and high-temperature thermoelectric properties of two series of tetrahedrites prepared by different synthesis routes are reported underlining the importance of off-stoichiometry in this family of compounds.


2018 ◽  
Vol 24 (60) ◽  
pp. 15942-15954 ◽  
Author(s):  
Wei Zhao ◽  
Jie Pan ◽  
Yuqiang Fang ◽  
Xiangli Che ◽  
Dong Wang ◽  
...  

2015 ◽  
Vol 3 (48) ◽  
pp. 12364-12378 ◽  
Author(s):  
R. Chetty ◽  
A. Bali ◽  
R. C. Mallik

This review discusses about the crystal structure, chemical bonding, and the electronic band structure of tetrahedrite materials. Also, this review outlines the effect of different doping elements on the thermoelectric properties of tetrahedrite materials.


2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Shabir Ahmad Mir ◽  
Dinesh C. Gupta

AbstractThrough the conventional DFT computation, we have designed new oxide double perovskites Ba2FeNiO6 and Ba2CoNiO6. The structural and thermodynamic stabilities are predicted by optimizing the crystal structure and evaluation of enthalpy of formation, respectively. Then by using the optimized lattice constant, we have explored the different physical properties. The GGA + mBJ electronic band-structure illustrates Ba2FeNiO6 is a half-metal with 100% spin polarization at the Fermi level. While Ba2CoNiO6 shows a ferromagnetic semiconducting nature. The change in the electronic structure when Fe is replaced by Co is explained with the help of the orbital diagram and exchange interaction. The eg-eg hybridization that happens via O-p states is strong because Fe–O–Ni and Co–O–Ni bond angles are strictly 180°. The narrow bandgaps in the semiconducting channels prompted us to analyze the applicability of these materials towards thermoelectric technology. Besides this, we have investigated the dependency of transport properties on electronic band structure. The semiconducting nature in Ba2CoNiO6 results in a significant ZT around 0.8 at room temperature makes it suitable for wasted-energy regeneration


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