Tong Zhen, Dumitrică Traian, Frauenheim Thomas
Shenzhen JL Computational Science and Applied Research Institute, Shenzhen 518131, China.
Department of Mechanical Engineering, University of Minnesota, Minnesota 55455, USA.
Phys Chem Chem Phys. 2021 Sep 15;23(35):19627-19635. doi: 10.1039/d1cp00682g.
Layered biaxial hyperbolic molybdenum trioxide (α-MoO) with weak van der Waals (vdW) interlayer bonding recently received extensive attention due to its anisotropic dielectric response to infrared (IR) radiation, which couples to the lattice vibrations and allows for manipulating the radiative energy transport. However, the understanding of IR-active phonon modes and dielectric function of it has not yet been fully achieved. Here, by utilizing mode-level first-principles analysis based on density functional theory (DFT), the phonon modes contributing to the IR dielectric response of α-MoO are fully determined. The anisotropic IR-active modes are identified from lattice vibration analysis, allowing for a clear evaluation of the IR absorption contribution from the weak or strong IR phonon modes. By further employing anharmonic-lattice dynamics calculations, the damping of the corresponding IR modes is directly obtained. This approach enables predictions of IR optical properties without any fitting or assumed parameters. Our predictions bridge the scientific gap of comprehensively understanding the unreported IR-active phonon modes of α-MoO and overall agree well with available experimental data, placing our DFT-based method at a privileged stage for accurately predicting the IR optical properties of α-MoO. These comprehensive understandings of the IR phonons and dielectric properties of α-MoO pave the way for nanophotonic devices with tunable functionalities and enable design of α-MoO for advanced optical devices.
具有弱范德华(vdW)层间键合的层状双轴双曲线三氧化钼(α-MoO)由于其对红外(IR)辐射的各向异性介电响应而受到广泛关注,这种响应与晶格振动耦合并允许操纵辐射能量传输。然而,对其红外活性声子模式和介电函数的理解尚未完全实现。在此,通过基于密度泛函理论(DFT)的模式级第一性原理分析,完全确定了对α-MoO的红外介电响应有贡献的声子模式。从晶格振动分析中识别出各向异性的红外活性模式,从而能够清楚地评估弱或强红外声子模式对红外吸收的贡献。通过进一步采用非谐晶格动力学计算,直接获得了相应红外模式的阻尼。这种方法能够在无需任何拟合或假设参数的情况下预测红外光学性质。我们的预测弥合了全面理解α-MoO未报道的红外活性声子模式的科学差距,并且总体上与现有实验数据吻合良好,使我们基于DFT的方法处于准确预测α-MoO红外光学性质的优势地位。对α-MoO的红外声子和介电性质的这些全面理解为具有可调功能的纳米光子器件铺平了道路,并能够为先进光学器件设计α-MoO。