Department of Physics, Beijing Normal University , 100875 Beijing, China.
Department of Physics, University of Science and Technology Beijing , 100083 Beijing, China.
ACS Appl Mater Interfaces. 2017 Jul 26;9(29):24704-24710. doi: 10.1021/acsami.7b05138. Epub 2017 Jul 17.
We report nanoscale bandgap engineering via a local strain across the inhomogeneous ferroelectric interface, which is controlled by the visible-light-excited probe voltage. Switchable photovoltaic effects and the spectral response of the photocurrent were explored to illustrate the reversible bandgap variation (∼0.3 eV). This local-strain-engineered bandgap has been further revealed by in situ probe-voltage-assisted valence electron energy-loss spectroscopy (EELS). Phase-field simulations and first-principle calculations were also employed for illustration of the large local strain and the bandgap variation in ferroelectric perovskite oxides. This reversible bandgap tuning in complex oxides demonstrates a framework for the understanding of the optically related behaviors (photovoltaic, photoemission, and photocatalyst effects) affected by order parameters such as charge, orbital, and lattice parameters.
我们通过在不均匀铁电界面上施加可见光激发的探针电压来实现纳米级带隙工程。我们探讨了可切换光伏效应和光电流的光谱响应,以说明可反向的带隙变化(约 0.3 eV)。通过原位探针电压辅助价电子能量损失谱(EELS)进一步揭示了这种局部应变工程化的带隙。还采用相场模拟和第一性原理计算来说明铁电钙钛矿氧化物中的大局部应变和带隙变化。这种复杂氧化物中可反向的带隙调谐为理解受电荷、轨道和晶格参数等序参数影响的光相关行为(光伏、光发射和光催化剂效应)提供了一个框架。