| Nature Nanotechnology | |
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| 년도 | 2024 |
| 학술지명 | Nature Nanotechnology |
| 논문명 | Ultrahigh-gain colloidal quantum dot infrared avalanche photodetectors |
| 게재권/집 | 20/2 |
| 수록페이지 | 237–245 |
| 저자명 | Byeongsu Kim†, Sang Yeon Lee†, Hyunseok Ko†, Jihyung Lee, Hyejeong Song, Sungjun Cho, Yun Hoo Kim, Min-Ho Lee, and Jung-Yong Lee* |
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Abstract Colloidal quantum dots (CQDs) are promising for infrared photodetectors with high detectivity and low-cost production. Although CQDs enable photoinduced charge multiplication, thermal noise in low-bandgap materials limits their performance in IR detectors. Here we present a pioneering architecture of a CQD-based infrared photodetector that uses kinetically pumped avalanche multiplication. By applying a strong electric field to a thick CQD layer (>540 nm), electrons acquire kinetic energy beyond the bandgap of the CQD material, initiating kinetically pumped charge multiplication. Optimizing the dot-to-dot distance to approximately 4.1 nm improves performance by balancing impact ionization and electron hopping. Our optimized CQD-based infrared photodetector achieved a maximum multiplication gain of 85 and a peak detectivity of 1.4 × 1014 Jones at 940 nm. This architecture offers potential for single-photon detection and ultrahigh detectivity applications. |
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