Wang Hua, Qian Xiaofeng
Department of Materials Science and Engineering, Texas A&M University, College Station, TX 77843, USA.
Sci Adv. 2019 Aug 16;5(8):eaav9743. doi: 10.1126/sciadv.aav9743. eCollection 2019 Aug.
Nonlinear optical responses to external electromagnetic field, characterized by second- and higher-order susceptibilities, play crucial roles in nonlinear optics and optoelectronics. Here, we demonstrate the possibility to achieve ferroicity-driven nonlinear photocurrent switching in time-reversal invariant multiferroics. It is enabled by the second-order current response to electromagnetic field whose direction can be controlled by both internal ferroic orders and external light polarization. Second-order direct photocurrent consists of shift current and circular photocurrent under linearly and circularly polarized light irradiation, respectively. We elucidate the microscopic mechanism in a representative class of two-dimensional multiferroic materials using group theoretical analyses and first-principles theory. The complex interplay of symmetries, shift vector, and Berry curvature governs the fundamental properties and switching behavior of shift current and circular photocurrent. Ferroicity-driven nonlinear photocurrent switching will open avenues for realizing nonlinear optoelectronics, nonlinear multiferroics, etc., using the coupled ferroic orders and nonlinear responses of ferroic materials under external field.
由二阶及更高阶极化率表征的对外加电磁场的非线性光学响应,在非线性光学和光电子学中起着至关重要的作用。在此,我们展示了在时间反演不变多铁性材料中实现铁性驱动的非线性光电流开关的可能性。这是由对电磁场的二阶电流响应实现的,其方向可由内部铁性序和外部光极化共同控制。二阶直接光电流分别由线偏振光和圆偏振光照射下的位移电流和圆光电流组成。我们使用群论分析和第一性原理理论阐明了一类代表性二维多铁性材料中的微观机制。对称性、位移矢量和贝里曲率之间的复杂相互作用决定了位移电流和圆光电流的基本性质和开关行为。铁性驱动的非线性光电流开关将为利用铁性材料在外部场下的耦合铁性序和非线性响应来实现非线性光电子学、非线性多铁性等开辟道路。