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Transformative Multifunction Deep Ultraviolet Photodetectors for On-Demand Applications: From Fast Optical Communication to Tunable In-Sensor Photocurrent Integration
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Publication Year
2024-05-29
Publisher
American Chemical Society
Citation
ACS Applied Materials and Interfaces, Vol.16, pp.27550-27559
Keyword
deep UV photodetectorin-sensor processingintegrationMorse codeoptical communication
Mesh Keyword
Deep ultravioletDeep uvDeep UV photodetectorIn-sensor processingMorse codesNeuromorphicOn-demand applicationsSensor processingTunablesUV photodetectors
All Science Classification Codes (ASJC)
Materials Science (all)
Abstract
The strategic utilization of photodetectors’ transient response could open new frontiers from free-space optical communication to the emerging field of neuromorphic optoelectronics. Contrarily, while communication requires a fast response, neuromorphic applications benefit from a slow and integrative transient photocurrent. By integrating these functionalities in a single device, this study unveils a photodetector with tunable responses, bridging the gap between optical communication and neuromorphic sensing and creating a versatile platform with on-demand applications. Particularly, a Ga2O3-based photodetector was designed, exhibiting a photocurrent on/off ratio close to 104, high responsivity of 0.43 A/W, and detectivity 1.22 × 1013 Jones under deep ultraviolet illumination (λ ∼ 260 nm). The photodetector demonstrates transient time-dependent on operational voltage, ranging from 10-4 to 0.2 s. The underlying mechanism is attributed to the voltage-dependent balance between photocarrier generation and defect-related recombination, as revealed by electrostatic force microscopy. Additionally, we have demonstrated potential applications, including digital Morse code interpretation, tunable integration of optical inputs within the sensor, one-time readouts, and effective analog Morse code reading. Furthermore, the effectiveness of input information recognition using analog integration, even with anomalies, was demonstrated. This work establishes a versatile approach for tunable in-sensor optical processing, potentially useful for a wide range of applications, from free-space optical communication to neuromorphic sensing.
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/34215
DOI
https://doi.org/10.1021/acsami.4c04421
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Type
Article
Funding
This study was supported through the National Research Foundation of Korea [NRF-2023R1A2C2003242, NRF-2022M3I7A3037878 and RS-2024-00403069] of the Ministry of Science and ICT, Republic of Korea.
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KUMARMOHITKumar, Mohit
Department of Materials Science Engineering
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