Gao Yue, Yang Mengtong, Zou Wenli, Zhou Jian, Zhang Chunmei
School of Physics, Northwest University, Xi'an 710127, China.
Center for Alloy Innovation and Design, State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an 710049, China.
Nano Lett. 2024 Oct 9;24(40):12560-12567. doi: 10.1021/acs.nanolett.4c03520. Epub 2024 Sep 27.
Two-dimensional materials have enormous development prospects in the bulk photovoltaic effect (BPVE). The enhancement and manipulation of the BPVE are some of the key roles of its various applications. Through a simplified Hamiltonian model, this work shows that a substantial band mixture between occupied and unoccupied states could produce a large optical absorption rate with trivial topological features, resulting in a significantly enhanced shift current generation. Furthermore, this mechanism is illustrated in a realistic CB/CN bilayer material based on density functional theory calculation and tight-binding model. As each layer of CB/CN is centrosymmetric, the in-plane shift current arises from the interfacial interaction. The electron transfer between the layers gives a controllable band mixture, which offers a giant shift current reaching over ∼1500 μA/V. In addition, we propose that interlayer sliding could reverse the in-plane shift current. Our work suggests a feasible approach for giant and switchable nonlinear optical processes.
二维材料在体光伏效应(BPVE)方面具有巨大的发展前景。BPVE的增强和调控是其各种应用的关键作用之一。通过一个简化的哈密顿模型,这项工作表明占据态和未占据态之间大量的能带混合可以产生具有平凡拓扑特征的大光学吸收率,从而导致显著增强的位移电流产生。此外,基于密度泛函理论计算和紧束缚模型,在一种实际的CB/CN双层材料中阐明了这种机制。由于CB/CN的每一层都是中心对称的,面内位移电流源于界面相互作用。层间的电子转移给出了可控的能带混合,产生了高达约1500 μA/V的巨大位移电流。此外,我们提出层间滑动可以反转面内位移电流。我们的工作为巨大且可切换的非线性光学过程提出了一种可行的方法。