Bafekry A, Fadlallah M M, Faraji M, Shafique A, Jappor H R, Abdolhoseini Sarsari I, Ang Yee Sin, Ghergherehchi M
Department of Physics, University of Guilan, Rasht 41335-1914, Iran.
Department of Physics, Rasht Branch, Islamic Azad University, Rasht, Iran.
Phys Chem Chem Phys. 2022 May 4;24(17):9990-9997. doi: 10.1039/d1cp04328e.
Low-symmetry penta-PdPSe (PdPSe) with intrinsic in-plane anisotropy was synthesized successfully [P. Li , , 2021, 2102541]. Motivated by this experimental discovery, we investigate the structural, mechanical, electronic, optical and thermoelectric properties of PdPSe nanosheets density functional theory calculations. The phonon dispersion, molecular dynamics simulation, and cohesive energy mechanical properties of the penta-PdPSe are verified to confirm its stability. The phonon spectrum represents a striking gap between the high-frequency and the low-frequency optical branches and an out-of-plane flexure mode with a quadratic dispersion in the long-wavelength limit. The Poisson's ratio indicates that penta-PdPSe is a brittle nanosheet. The penta-PdPSe is a semiconductor with an indirect bandgap of 1.40 (2.07) eV using the PBE functional (HSE06 hybrid functional). Optical properties simulation suggests that PdPSe is capable of absorbing a substantial range of visible to ultraviolet light. Band alignment analysis also reveals the compatibility of PdPSe for water splitting photocatalysis application. By combining the electrical and thermal transport properties of PdPSe, we show that a high power factor is achievable at room temperature, thus making PdPSe a candidate material for thermoelectric applications. Our findings reveal the strong potential of penta-PdPSe nanosheets for a wide array of applications, including optoelectronic, water splitting and thermoelectric device applications.
成功合成了具有本征面内各向异性的低对称性五聚体PdPSe(PdPSe)[P. Li,,2021,2102541]。受这一实验发现的启发,我们通过密度泛函理论计算研究了PdPSe纳米片的结构、力学、电子、光学和热电性质。通过验证五聚体PdPSe的声子色散、分子动力学模拟和内聚能力学性质来确认其稳定性。声子谱显示高频和低频光学支之间存在明显的能隙,并且在长波极限下存在具有二次色散的面外弯曲模式。泊松比表明五聚体PdPSe是一种脆性纳米片。使用PBE泛函(HSE06杂化泛函)时,五聚体PdPSe是一种间接带隙为1.40(2.07)eV的半导体。光学性质模拟表明,PdPSe能够吸收从可见光到紫外光的相当大范围内的光。能带对齐分析还揭示了PdPSe在光催化水分解应用中的兼容性。通过结合PdPSe的电输运和热输运性质,我们表明在室温下可以实现高功率因子,从而使PdPSe成为热电应用的候选材料。我们的研究结果揭示了五聚体PdPSe纳米片在包括光电子、水分解和热电器件应用在内的广泛应用中的强大潜力。