Screening on optoelectronic and thermoelectric response of novel Zintl phase CaMg2Pn2 (Pn = P, As) for renewable energy applications: A first principles method
Ramesh Sharma , Mumtaz Manzoor , Sabah Ansar , Muhammad Aslam , Kashchenko Nadezhda
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引用次数: 0
Abstract
The study on the zintl compounds CaMg2Pn2 (Pn = P, As), compounds utilizing density functional theory (DFT) through the WIEN2k code comprehensively examines its structural, electronic, optical, and thermoelectric properties. Generalized gradient approximation (GGA) and modified Becke-Johnson (mBJ) potentials are used to determine the exchange-correlation potential. The electronic analysis of the CaMg2Pn2 compounds, reveals that this material behaves as a semiconductor, possessing an indirect band gap of 1.87 eV and 1.76 eV. The study of the optical properties of CaMg2Pn2, including its refractive index, extinction coefficient, electron energy loss, dielectric tensor, and optical conductivity, alongside the specific finding that it does not absorb energy below 2.60 eV, provides valuable insights. In addition, BoltzTrap is a software used to calculate the transport properties against temperature (200–1200K) and chemical potential of materials based on their electronic structures. The highest power-factor (PF) 5.57 × 1011 W/K2ms, 5.0 × 1011 W/K2ms at 300 K was attained for CaMg2Pn2 (Pn = P, As) compounds. These findings suggest that CaMg2Pn2 has potential as a thermoelectric material with interesting characteristics. Because of their exceptional optoelectronic as well as high PF values, this group of materials holds significant promise for applications in optoelectronic and thermal devices. Their properties suggest potential advancements in fields such as solar energy, light emission technologies, and efficient thermal management systems.
期刊介绍:
Solid State Communications is an international medium for the publication of short communications and original research articles on significant developments in condensed matter science, giving scientists immediate access to important, recently completed work. The journal publishes original experimental and theoretical research on the physical and chemical properties of solids and other condensed systems and also on their preparation. The submission of manuscripts reporting research on the basic physics of materials science and devices, as well as of state-of-the-art microstructures and nanostructures, is encouraged.
A coherent quantitative treatment emphasizing new physics is expected rather than a simple accumulation of experimental data. Consistent with these aims, the short communications should be kept concise and short, usually not longer than six printed pages. The number of figures and tables should also be kept to a minimum. Solid State Communications now also welcomes original research articles without length restrictions.
The Fast-Track section of Solid State Communications is the venue for very rapid publication of short communications on significant developments in condensed matter science. The goal is to offer the broad condensed matter community quick and immediate access to publish recently completed papers in research areas that are rapidly evolving and in which there are developments with great potential impact.