Abstract
ZnO, as a potential candidate, has attracted extensive attention in optoelectronics, energy systems and other fields. However, the wide bandgap of ZnO severely limits its application in a wide range of photoresponse, and preparing p-type ZnO is another stumbling block that hinders the development of ZnO-based devices. Here, a high-performance photodetector with a wider spectral detection range from UV–vis to NIR builds on the structure of p-ZnO/Al2O3/n-Si is fabricated. The PD exhibits a marked sensitivity (75,000%), excellent responsivity (13.80 A W−1, 365 nm), high specific detectivity (> 1012 Jones), fast response (< 100 μs), which indicates that inserting an insulated Al2O3 layer between an n-type semiconductor and a p-type semiconductor is a fruitful method to enhance carriers separation and collection efficiency. The carrier transport mechanism at the interface of PDs with different Al2O3 thickness is based on the quantum mechanical of Fowler-Nordheim tunneling or direct tunneling. Additionally, the overall signal levels of the photodetector could be further optimized using the piezo-phototronic effect. This study demonstrates an alternative route to implement high-efficiency photodetectors with a broader response range and provides an in-depth understanding of regulating carrier tunneling of the p-ZnO/Al2O3/n-Si heterojunction using the piezo-phototronic effect.
| Original language | English |
|---|---|
| Article number | 106090 |
| Journal | Nano Energy |
| Volume | 86 |
| DOIs | |
| State | Published - Aug 2021 |
| Externally published | Yes |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
Keywords
- A broad spectral range
- P-ZnO/AlO/n-Si
- Photodetector
- Piezo-phototronic effect
- Tunneling effect
- UV–Vis–NIR
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