论文标题
首先原理中srtio $ _3 $中量子效应的大规模原子量模拟
Large-scale Atomistic Simulation of Quantum Effects in SrTiO$_3$ from First Principles
论文作者
论文摘要
晶格振动的量子效应在凝结物质系统的许多物理特性中起主要作用,包括特定性能,例如特定的热量,结构相变,以及与零点波动密切相关的量子晶体和量子晶体的现象。但是,实现具有完全量子力学描述的逼真材料的原子模拟仍然是一个巨大的挑战。在这里,我们提出了大规模分子动力学模拟的第一原则策略,其中通过深电位(DP)获得的高精度力场与量子热浴(QTB)方法相结合,以说明量子效应。我们使用原型示例SRTIO $ _3 $证明了该DP+QTB方法的功能,该示例表现出量子波动引起的几种现象,例如抑制的结构相变温度,低温和量子关键行为$ 1/t^2 $ artectric常数的量子相相转换温度,量子相相的接地状态。我们的DP+QTB策略在模拟大规模系统方面有效,并且是第一个原则。更重要的是,只要对相应的DP模型进行训练,也可以研究其他系统的量子效应。该策略将极大地丰富我们研究凝结物理学的量子行为的愿景和手段。
Quantum effects of lattice vibration play a major role in many physical properties of condensed matter systems, including thermal properties such as specific heat, structural phase transition, as well as phenomena such as quantum crystal and quantum paraelectricity that are closely related to zero-point fluctuations. However, realizing atomistic simulations for realistic materials with a fully quantum-mechanical description remains a great challenge. Here, we propose a first-principle strategy for large scale Molecular Dynamics simulation, where high accuracy force field obtained by Deep-Potential (DP) is combined with Quantum Thermal Bath (QTB) method to account for quantum effects. We demonstrate the power of this DP+QTB method using the archetypal example SrTiO$_3$, which exhibits several phenomena induced by quantum fluctuations, such as the suppressed structure phase transition temperature, the quantum paraelectric ground state at low temperature and the quantum critical behavior $1/T^2$ law of dielectric constant. Our DP+QTB strategy is efficient in simulating large scale system, and is first principle. More importantly, quantum effects of other systems could also be investigated as long as corresponding DP model is trained. This strategy would greatly enrich our vision and means to study quantum behavior of condensed matter physics.