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February 8, 2026Advanced Optical Materials0 citations

Multidimensional Photodetection with a Broadband‐Sensitive and Polarimetric TiS 3 /In 2 S 3 Heterojunction

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XLXiaofeng LiPZPu ZouZWZiqiao Wu

Key Points

  • The research aims to develop an advanced photodetector that integrates multiple detection capabilities into a single device.
  • Developed a van der Waals heterojunction using In2S3 and TiS3
  • Operated across the ultraviolet-to-near-infrared spectrum
  • Measured detectivity, polarization anisotropy, response speed, and noise-equivalent power
  • Demonstrated applications in multidimensional imaging and optical communication
  • Achieved a detectivity of 1.4 × 10^14 Jones
  • Demonstrated polarization anisotropy of 3.42
  • Fast response speed measurements of 404/789 µs
  • Achieved ultralow power imaging at 0.23 pW

Abstract

ABSTRACT The integration of broadband, polarization‐sensitive, and ultrasensitive detection into a single photodetector is highly desirable for multidimensional optoelectronics but remains challenging. This work reports a van der Waals heterojunction photodetector based on non‐layered 2D In 2 S 3 and TiS 3 that overcomes this limitation. The device operates across an ultraviolet‐to‐near‐infrared spectrum (365–1064 nm) and sets a new benchmark by unifying an exceptional detectivity (1.4 × 10 14 Jones), a strong polarization anisotropy (3.42), fast response speed (404/789 µs), and femtowatt‐level noise‐equivalent power (28.2 fW/Hz 1/2 ) at 405 nm. We reveal that unilateral depletion‐induced photogating effect is responsible for this superior performance, enabling high photoconductive gain without compromising speed. Capitalizing on these advanced capabilities, we further demonstrate its application in multidimensional photodetection, including broadband imaging, polarization‐resolved imaging, and ultralow power imaging at 0.23 pW. Furthermore, a two‐channel optical communication system is implemented using intensity and polarization as independent information carriers, underscoring its potential to enhance data transmission capacity. This work breaks the pervasive performance trade‐offs and provides a versatile platform for future multidimensional optoelectronic systems.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/6988291e0fc35cd7a8849388https://doi.org/10.1002/adom.71020
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