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Abstract
Precise synthesis of all-inorganic lead halide perovskite nanowire heterostructures and superlattices with designable modulation of chemical compositions is essential for tailoring their optoelectronic properties. Nevertheless, controllable synthesis of perovskite nanostructure heterostructures remains challenging and underexplored to date. Here, we report a rational strategy for wafer-scale synthesis of one-dimensional periodic CsPbCl3/CsPbI3 superlattices. We show that the highly parallel array of halide perovskite nanowires can be prepared roughly as horizontally guided growth on an M-plane sapphire. A periodic patterning of the sapphire substrate enables position-selective ion exchange to obtain highly periodic CsPbCl3/CsPbI3 nanowire superlattices. This patterning is further confirmed by micro-photoluminescence investigations, which show that two separate band-edge emission peaks appear at the interface of a CsPbCl3/CsPbI3 heterojunction. Additionally, compared with the pure CsPbCl3 nanowires, photodetectors fabricated using these periodic heterostructure nanowires exhibit superior photoelectric performance, namely, high ION/IOFF ratio (104), higher responsivity (49 A/W), and higher detectivity (1.51 × 1013 Jones). Moreover, a spatially resolved visible image sensor based on periodic nanowire superlattices is demonstrated with good imaging capability, suggesting promising application prospects in future photoelectronic imaging systems. All these results based on the periodic CsPbCl3/CsPbI3 nanowire superlattices provides an attractive material platform for integrated perovskite devices and circuits. © 2024 American Chemical Society
Original language | English |
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Pages (from-to) | 18022-18035 |
Journal | ACS Nano |
Volume | 18 |
Issue number | 27 |
Online published | 27 Jun 2024 |
DOIs | |
Publication status | Published - 9 Jul 2024 |
Funding
The authors are grateful to the National Natural Science Foundation of China (no. 52373246), the National Key Research and Development Program of China (no. 2022YFA1404201), the Shanxi Basic Research Program Project (no. 20210302123128), and a fellowship award from the Research Grants Council of the Hong Kong Special Administrative Region, China (CityU RFS2021-1S04), for financial support.
Research Keywords
- on-wire bandgap design
- perovskite nanowire superlattices
- horizontal guided growth
- heterostructure nanowire arrays
- high-performance photodetection
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RFS: Developing Negative-Capacitance Nanowire Transistor Arrays and Integrated Circuits for Next-Generation Flexible Electronics
HO, J. C. Y. (Principal Investigator / Project Coordinator)
1/01/21 → …
Project: Research