热电效应
材料科学
光电子学
能量(信号处理)
工程物理
凝聚态物理
物理
热力学
量子力学
作者
Pawan Joshi,Gang Bahadur Acharya,Ishwor Bahadur Khadka,Bhuvanesh Srinivasan,Se‐Hun Kim,Madhav Prasad Ghimire
标识
DOI:10.1021/acsaem.5c00268
摘要
Recent research on kagome materials has shown their multiple applications in diverse fields. Here, we have carried out density functional theory (DFT) calculations to explore the multifaceted properties of a synthesized, but yet less-explored kagome material Rb 2 Pt 3 S 4 . This material is found to be dynamically and mechanically stable. Electronic structure calculations have shown that it is a semiconductor with an indirect band gap ranging from ∼1.28 to 2.34 eV. The major contributions to the density of states around the Fermi level are from the Pt 5d and S 3p orbitals. Optical parameters were computed using a dielectric function, revealing moderate optical reflectivity and conductivity, large optical anisotropy, and optical activity within the ultraviolet region, suggesting that the proposed material is a potential candidate for optoelectronic devices. In addition, temperature- and pressure-dependent thermal properties manifested that the compound studied bears ultralow lattice thermal conductivity with low Debye temperature, low sound velocities, and large Grüneisen parameter. The calculation of transport properties based on the semiclassical Boltzmann theory reveals that Rb 2 Pt 3 S 4 is a potential candidate for thermoelectric material with optimum figure of merit ( ZT ) values of ∼1.88 (for n-type) and ∼1.54 (for p-type) at 900 K . Furthermore, the valence band convergence identified in Rb 2 Pt 3 S 4 plays a significant role in improving the power factor and ZT, suggesting it as an energy-efficient material.
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