Pressure-dependent physical properties of cesium-niobium oxide: a comprehensive study

被引:8
作者
Bakar, Abu [1 ]
Kiani, Muhammad Salman [2 ]
Nawaz, Rab [3 ]
Wahab, Abdul [4 ]
机构
[1] Univ Punjab, Ctr Excellence Solid State Phys, Lahore 54000, Pakistan
[2] Nazarbayev Univ, Dept Phys, Astana 010000, Kazakhstan
[3] Gulf Univ Sci & Technol, Ctr Appl Math & Bioinformat CAMB, Hawally 32093, Kuwait
[4] Nazarbayev Univ, Dept Math, Astana 010000, Kazakhstan
关键词
THERMOELECTRIC PROPERTIES; ELECTRONIC-STRUCTURE; ELASTIC PROPERTIES; AB-INITIO; STABILITY; CONSTANTS; CRYSTALS; FIGURE; MERIT;
D O I
10.1039/d3ra02398b
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Perovskites, an important class of materials, are mostly utilized in memory and spintronic devices. The thermoelectric response calculations for some perovskite oxides have been reported, but their attributes under pressure have rarely been explored. In this current study, the effects of high pressure on various properties of CsNbO3 perovskite oxides in the cubic phase were investigated using the pseudopotential approach and Boltzmann transport theory. Specifically, the structural electronic dispersion relations, density of states, phonon properties, elasto-mechanical properties, optical constants, and thermoelectric performance of the material were analyzed. CsNbO3 was reported to be dynamically stable through the optimization of energy against volume under ambient pressure conditions. The phonon dispersion curves of CsNbO3 were computed at pressures ranging from 60 to 100 GPa to demonstrate its stability under these pressures. At ambient pressure, CsNbO3 is a semiconductor with a wide direct band gap of 1.95 eV. With the increase in pressure, the band gap starts decreasing. An analysis of the imaginary part of the dielectric constant suggests that this material may be useful for sensors and optoelectronic devices. Various thermoelectric response parameters were tested for CsNbO3 at temperatures from 50 K to 800 K, with a step size of 50 K, and pressures of 60-100 GPa. Based on the calculated power factor values and optical parameters, CsNbO3 proved to be a potential candidate for energy harvesting applications. In this study, the effects of high pressure on various properties of CsNbO3 perovskite oxides in the cubic phase were investigated using the pseudopotential approach and Boltzmann transport theory.
引用
收藏
页码:29675 / 29688
页数:14
相关论文
共 65 条
[1]   Investigation of electronic, optical and thermoelectric properties of perovskite BaTMO3 (TM=Zr, Hf): First principles calculations [J].
Al Azar, Said ;
Al-Zoubi, Ibrahim ;
Mousa, Ahmad A. ;
Masharfe, Riad S. ;
Jaradat, Emad K. .
JOURNAL OF ALLOYS AND COMPOUNDS, 2021, 887
[2]   Electronic structure of cubic perovskite SnTaO3 [J].
Ali, Zahid ;
Ahmad, Iftikhar ;
Khan, Imad ;
Amin, B. .
INTERMETALLICS, 2012, 31 :287-291
[3]   Elastic properties of perovskite YCrO3 up to 60 GPa [J].
Ardit, M. ;
Cruciani, G. ;
Dondi, M. ;
Merlini, M. ;
Bouvier, P. .
PHYSICAL REVIEW B, 2010, 82 (06)
[4]   Phonons and related crystal properties from density-functional perturbation theory [J].
Baroni, S ;
de Gironcoli, S ;
Dal Corso, A ;
Giannozzi, P .
REVIEWS OF MODERN PHYSICS, 2001, 73 (02) :515-562
[5]  
Beaumont R.W.P, 2018, Organic Thermoelectric Composites Materials
[6]  
Comprehensive Composite Materials II, V6th
[7]   Structural, elastic, mechanical, and thermodynamic characteristic of NaReO3 and KReO3 perovskite oxides from first principles study [J].
Behera, D. ;
Dixit, A. ;
Kumari, K. ;
Srivastava, A. ;
Sharma, R. ;
Mukherjee, S. K. ;
Khenata, R. ;
Boumaza, A. ;
Bin-Omran, S. .
EUROPEAN PHYSICAL JOURNAL PLUS, 2022, 137 (12)
[8]   Reliable measurement of the Seebeck coefficient of organic and inorganic materials between 260 K and 460 K [J].
Beretta, D. ;
Bruno, P. ;
Lanzani, G. ;
Caironi, M. .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2015, 86 (07)
[9]   First-principle calculations to investigate structural, electronic, optical, thermodynamic, and thermoelectric properties of ABO3 (A=Cs, Rb and B= Ta, Nb) compounds [J].
Berri, Saadi ;
Bouarissa, Nadir .
EMERGENT MATERIALS, 2022, 5 (06) :1831-1847
[10]   FINITE ELASTIC STRAIN OF CUBIC CRYSTALS [J].
BIRCH, F .
PHYSICAL REVIEW, 1947, 71 (11) :809-824