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September 16, 20250 citations

Ultrafast reversible photoconductivity in 2D MoTe

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YTYe TaoCHChengyun HongJKJi‐Hee Kim

Key Points

  • Photoconductivity inversion occurs within 100 picoseconds, demonstrating rapid control of optical responses.
  • The transition is controlled by a minimal voltage change of 10 mV, showcasing precise tunability for device applications.
  • A device with a response time of 3.8 picoseconds is proposed, emphasizing its potential in ultrafast technologies.
  • This advancement points to significant implications in speed applications like optical communication and quantum information.

Abstract

Two-dimensional (2D) materials, particularly transition metal dichalcogenides, have exceptional optoelectronic properties, making them highly promising for next-generation photonic integrated circuits. Despite great advancements in 2D optoelectronic devices, achieving ultrafast and controllable photoconductivity polarity inversion with a single device remains a fundamental challenge due to the static nature of built-in electric fields at metal/2D material interfaces. This study demonstrates a transient electric field reversal at the MoTe2/Pt Schottky junction, enabling photoconductivity inversion from negative to positive within 100 ps. By applying ultrafast photocurrent detection, a minimal voltage variation (10 mV) precisely controls this transition, and a device with a remarkable photocurrent response time of 3.8 ps is proposed. This work advances the design of ultrafast, tunable photodetectors, offering potential applications in high-speed optical communication, ultrafast imaging, and quantum information processing.

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Cite This Study

Tao et al. (2025) studied this question.

synapsesocial.com/papers/68c93fee01120bef803bb1c1https://doi.org/10.1126/sciadv.ady1321
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