Bicontinuous oxide heteroepitaxy with enhanced photoconductivity

Author:

Shao Pao-Wen,Wu Yi-Xian,Chen Wei-Han,Zhang Mojue,Dai Minyi,Kuo Yen-Chien,Hsieh Shang-HsienORCID,Tang Yi-Cheng,Liu Po-LiangORCID,Yu PuORCID,Chen Yuang,Huang RongORCID,Chen Chia-HaoORCID,Hsu Ju-Hung,Chen Yi-ChunORCID,Hu Jia-MianORCID,Chu Ying-HaoORCID

Abstract

AbstractSelf-assembled systems have recently attracted extensive attention because they can display a wide range of phase morphologies in nanocomposites, providing a new arena to explore novel phenomena. Among these morphologies, a bicontinuous structure is highly desirable based on its high interface-to-volume ratio and 3D interconnectivity. A bicontinuous nickel oxide (NiO) and tin dioxide (SnO2) heteroepitaxial nanocomposite is revealed here. By controlling their concentration, we fabricated tuneable self-assembled nanostructures from pillars to bicontinuous structures, as evidenced by TEM-energy-dispersive X-ray spectroscopy with a tortuous compositional distribution. The experimentally observed growth modes are consistent with predictions by first-principles calculations. Phase-field simulations are performed to understand 3D microstructure formation and extract key thermodynamic parameters for predicting microstructure morphologies in SnO2:NiO nanocomposites of other concentrations. Furthermore, we demonstrate significantly enhanced photovoltaic properties in a bicontinuous SnO2:NiO nanocomposite macroscopically and microscopically. This research shows a pathway to developing innovative solar cell and photodetector devices based on self-assembled oxides.

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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