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Updated: Feb 24, 2026

Integrating a Triplet-triplet Annihilation Up-conversion System to Enhance Dye-sensitized Solar Cell Response to Sub-bandgap Light
Published on: September 12, 2014
Modulación de la Región de Agotamiento Inducida por Luz en un Transistor de Efecto de Campo con Unión Schottky de
Ze Yang1,2, Xingkun Peng1, Ying Li1
1Department of Microelectronics and Integrated Circuit, School of Electronic Science and Engineering (National Model Microelectronics College), Xiamen University, Xiamen 361005, China.
Abstract:
The solar-blind phototransistor is a three-terminal device capable of substantially suppressing dark current and reducing noise solely through gate-voltage modulation. In this work, we report a top-gate β-Ga2O3 metal-semiconductor field-effect transistor employing a semimetal PtTe2 gate that forms a dielectric-free van der Waals (vdW) Schottky contact with the channel. The corresponding transistor exhibits a minimal hysteresis of 80 mV, an extremely low OFF-state current of ≈10 fA, and an ON/OFF current ratio exceeding 108. The phototransistor demonstrates excellent device performance in terms of a record-high photo-to-dark current ratio of 1.13 × 109, a high responsivity of 6.75 × 104 A/W, a large external quantum efficiency of 3.3 × 107 %, and a high specific detectivity of 4.46 × 1015 Jones. These excellent characteristics are attributed to the top-gate-induced modulation of the depletion region, which suppresses dark current, and to the enhanced photocurrent generated by the synergistic response of the PtTe2/β-Ga2O3 interface under illumination. The PtTe2/β-Ga2O3 phototransistor provides a promising pathway toward high-responsivity and high-detectivity solar-blind optoelectronics.
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