Abstract:
In this paper, a new
MSM-UV-photodetector (
PD) based on dual wide band-gap material (DM) engineering aspect is proposed to achieve high-performance self-powered device. Comprehensive analytical models for the proposed sensor photocurrent and the device properties are developed incorporating the impact of DM aspect on the device photoelectrical behavior. The obtained results are validated with the numerical data using commercial
TCAD software. Our investigation demonstrates that the adopted design amendment modulates the electric field in the device, which provides the possibility to drive appropriate photo-generated carriers without an external applied voltage. This phenomenon suggests achieving the dual role of effective carriers’ separation and an efficient reduce of the dark current. Moreover, a new hybrid approach based on analytical modeling and Particle Swarm Optimization (
PSO) is proposed to achieve improved photoelectric behavior at zero bias that can ensure favorable self-powered
MSM-based
UV-PD. It is found that the proposed design methodology has succeeded in identifying the optimized design that offers a self-powered device with high-responsivity (
98 mA/W) and superior
ION/IOFF ratio (
480 dB). These results make the optimized
MSM-UV-DM-
PD suitable for providing low cost self-powered devices for high-performance optical communication and monitoring applications.
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