Chang Dahu, Yu Weiyang, Sun Qiang, Jia Yu
International Laboratory for Quantum Functional Materials of Henan, School of Physics and Engineering, Zhengzhou University, Zhengzhou, 450001, China.
Phys Chem Chem Phys. 2017 Jan 18;19(3):2067-2072. doi: 10.1039/c6cp07589d.
Negative thermal expansion (NTE) originating from the transverse thermal vibrations of metal atoms is seldom reported, which is why the transparent conducting oxide 2H CuScO is such a unique case. Using the density functional theory (DFT) and the quasi-harmonic approximation (QHA), the thermal properties of 2H CuScO were investigated. The coefficient of thermal expansion (CTE) and the Grüneisen parameters of different vibrational modes were calculated, and we found that, up to a temperature of 200 K, 2H CuScO displays a strong NTE behavior along the c-axis (i.e. along the O-Cu-O linkage), with an average CTE of approximately -2 × 10 K. Our calculations are consistent with the experimental values. Furthermore, we reveal that low energy modes (0-150 cm) originating from the cooperation of transverse vibrations of Cu and O atoms, which result in larger negative Grüneisen parameters and vibrational frequency softening phenomenon under pressure, are the main reasons for the NTE of such materials with a 2H structure. Our findings not only provide a better understanding of the NTE mechanism, but also present a report on detailed abnormal thermal properties in 2H CuScO that have applications in electronic, electrochemical and optoelectronic devices.
源自金属原子横向热振动的负热膨胀(NTE)鲜有报道,这就是透明导电氧化物2H CuScO如此独特的原因。利用密度泛函理论(DFT)和准谐近似(QHA),对2H CuScO的热性质进行了研究。计算了热膨胀系数(CTE)和不同振动模式的格林艾森参数,我们发现,在高达200 K的温度下,2H CuScO沿c轴(即沿O-Cu-O键)表现出强烈的NTE行为,平均CTE约为 -2×10⁻⁵ K⁻¹。我们的计算结果与实验值一致。此外,我们揭示了源自Cu和O原子横向振动协同作用的低能模式(0 - 150 cm⁻¹),在压力下会导致更大的负格林艾森参数和振动频率软化现象,是这种具有2H结构材料产生NTE的主要原因。我们的研究结果不仅有助于更好地理解NTE机制,还提供了一份关于2H CuScO详细异常热性质的报告,这些性质在电子、电化学和光电器件中具有应用价值。