论文标题
元素二维铁电响应
Shift current response in elemental two-dimensional ferroelectrics
论文作者
论文摘要
没有反转对称性的散装材料可以在照明下产生直流电流。这种无接口的当前一代机制,称为散装光伏效应(BPVE),不依赖$ p $ - $ n $连接。在这里,我们探索了单元的二维(2D)铁电基质中的偏移电流,这是一种负责BPVE的主要机制,以AS,SB和BI的磷酸单层表示。这些元素2D材料提供的强大的共价,小带隙和较大的关节密度可产生大型转移电流,表现优于许多最先进的材料。我们发现,由于其拓扑性质,移位电流敏感地取决于Bloch波函数的细节。考虑到广义梯度近似之外的电子交换相关电位以及密度功能理论计算中的自旋轨相互作用以获得可靠的频率依赖性移位电流响应,这一点至关重要。
A bulk material without inversion symmetry can generate a direct current under illumination. This interface-free current generation mechanism, referred to as the bulk photovoltaic effect (BPVE), does not rely on $p$-$n$ junctions. Here, we explore the shift current generation, a major mechanism responsible for the BPVE, in single-element two-dimensional (2D) ferroelectrics represented by phosphorene-like monolayers of As, Sb, and Bi. The strong covalency, small band gap, and large joint density of states afforded by these elemental 2D materials give rise to large shift currents, outperforming many state-of-the-art materials. We find that the shift current, due to its topological nature, depends sensitively on the details of the Bloch wave functions. It is crucial to consider the electronic exchange-correlation potential beyond the generalized gradient approximation as well as the spin-orbit interaction in density functional theory calculations to obtain reliable frequency-dependent shift current responses.