Ultrahigh Detectivity Colloidal Quantum dot Avalanche Photodetectors Driven by Electron Mobility of the n‐Type Layer

ABSTRACT Colloidal quantum dots (CQDs) are pragmatic candidates for infrared photodetectors due to their high absorption coefficient in the infrared region and solution processability. In addition, an incorporation of avalanche multiplication within the CQD region offers a route to achieve ultrahigh detectivity ( D * ) in CQD‐based infrared photodetectors. Herein, we clarify how the electron mobility of n‐type layer would affect to the detection performances in the CQD‐based avalanche photodetector (CQD‐APD). The introduction of ZnO nanoparticles (NPs) having high electron mobility as n‐type layer suppresses the electron accumulation at the CQD/n‐type interfaces, thereby mitigating the defect‐mediated trapping‐detrapping processes and reducing the flicker noise current in our CQD‐APD. Moreover, the reduction of accumulated electrons alleviates a formation of potential barrier at CQD/n‐type interfaces, enabling the initiation of avalanche multiplication with lower energy threshold. Our CQD‐APD with optimal n‐type layer demonstrates an outstanding multiplication gain exceeding 400 and a peak detectivity of 1.4 × 10 15 Jones at a wavelength of 940 nm.

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Publication Details

Journal
Advanced Electronic Materials
Published
2026-09-22
DOI
https://doi.org/10.1002/aelm.70584
Primary Topic
Quantum Dots Synthesis And Properties
Type
article
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Ultrahigh Detectivity Colloidal Quantum dot Avalanche Photodetectors Driven by Electron Mobility of the n‐Type Layer

Byeongsu Kim, Changjo Kim
Advanced Electronic Materials
Quantum Dots Synthesis And Properties
article

Ultrahigh Detectivity Colloidal Quantum dot Avalanche Photodetectors Driven by Electron Mobility of the n‐Type Layer

Byeongsu Kim, Changjo Kim
article en

Abstract

ABSTRACT Colloidal quantum dots (CQDs) are pragmatic candidates for infrared photodetectors due to their high absorption coefficient in the infrared region and solution processability. In addition, an incorporation of avalanche multiplication within the CQD region offers a route to achieve ultrahigh detectivity ( D * ) in CQD‐based infrared photodetectors. Herein, we clarify how the electron mobility of n‐type layer would affect to the detection performances in the CQD‐based avalanche photodetector (CQD‐APD). The introduction of ZnO nanoparticles (NPs) having high electron mobility as n‐type layer suppresses the electron accumulation at the CQD/n‐type interfaces, thereby mitigating the defect‐mediated trapping‐detrapping processes and reducing the flicker noise current in our CQD‐APD. Moreover, the reduction of accumulated electrons alleviates a formation of potential barrier at CQD/n‐type interfaces, enabling the initiation of avalanche multiplication with lower energy threshold. Our CQD‐APD with optimal n‐type layer demonstrates an outstanding multiplication gain exceeding 400 and a peak detectivity of 1.4 × 10 15 Jones at a wavelength of 940 nm.

Advanced Electronic Materials
Ulsan College (KR), University of Ulsan (KR), Ulsan University Hospital (KR)
Affordable and clean energy
Openalex Percentile: Top 24%
Quantum Dots Synthesis And Properties
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Ultrahigh Detectivity Colloidal Quantum dot Avalanche Photodetectors Driven by Electron Mobility of the n‐Type Layer — Byeongsu Kim, Changjo Kim · Advanced Electronic Materials (2026) | TGRS Research Map | TGRS