Computation‐Less, Bias‐Free, and Ultra‐Broadband Photodetector for On‐Chip Edge Extraction

ABSTRACT Edges represent the critical structural features in visual information, and their extraction is essential for image processing. However, mainstream edge extraction technologies either rely on numerical computation implemented in software or hardware, or require auxiliary delicate optical components, thereby facing challenges in energy consumption, structural complexity, or operational spectral range. Here, a physical‐mechanism‐empowered, edge‐sensitive photodetector is proposed to achieve computation‐less on‐chip edge extraction, featuring bias‐free operation and an ultra‐broadband photoresponse. The device exhibits a position‐dependent bi‐directional photoresponse driven by the diffusion and asymmetrical transport of photocarriers, thereby realizing an intrinsic spatial differentiation. Consequently, a single device can directly perceive both edge intensity and orientation at the pixel level. Experimental results also demonstrate that the device can operate without any external power supply and exhibits an ultra‐broad operating spectral range from the near‐infrared to the long‐wave infrared at room temperature, with commendable sensitivity to blackbody radiation. The results highlight the feasibility of exploiting intrinsic physical mechanisms for edge extraction, offering an insightful pathway toward the development of compact, low‐power, and functional optoelectronic devices.

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Publication Details

Journal
Advanced Materials
Published
2026-09-11
DOI
https://doi.org/10.1002/adma.74925
Primary Topic
Metamaterials and Metasurfaces Applications
Type
article
Field-Weighted Citation Impact
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article

Computation‐Less, Bias‐Free, and Ultra‐Broadband Photodetector for On‐Chip Edge Extraction

Xingzhan Wei, Fakun Wang, Xingsi Liu, Jintao Fu et al.
Advanced Materials
Metamaterials and Metasurfaces Applications
article

Computation‐Less, Bias‐Free, and Ultra‐Broadband Photodetector for On‐Chip Edge Extraction

Xingzhan Wei, Fakun Wang, Xingsi Liu, Jintao Fu, Qijie Wang, Hao Jiang, Weibo Gao, Cheng‐Wei Qiu, Yang Peng
article en

Abstract

ABSTRACT Edges represent the critical structural features in visual information, and their extraction is essential for image processing. However, mainstream edge extraction technologies either rely on numerical computation implemented in software or hardware, or require auxiliary delicate optical components, thereby facing challenges in energy consumption, structural complexity, or operational spectral range. Here, a physical‐mechanism‐empowered, edge‐sensitive photodetector is proposed to achieve computation‐less on‐chip edge extraction, featuring bias‐free operation and an ultra‐broadband photoresponse. The device exhibits a position‐dependent bi‐directional photoresponse driven by the diffusion and asymmetrical transport of photocarriers, thereby realizing an intrinsic spatial differentiation. Consequently, a single device can directly perceive both edge intensity and orientation at the pixel level. Experimental results also demonstrate that the device can operate without any external power supply and exhibits an ultra‐broad operating spectral range from the near‐infrared to the long‐wave infrared at room temperature, with commendable sensitivity to blackbody radiation. The results highlight the feasibility of exploiting intrinsic physical mechanisms for edge extraction, offering an insightful pathway toward the development of compact, low‐power, and functional optoelectronic devices.

Advanced Materials
National University of Singapore (SG), Nanyang Technological University (SG), Chongqing Institute of Green and Intelligent Technology (CN)
Affordable and clean energy
Openalex Percentile: Top 28%
Metamaterials and Metasurfaces Applications
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