High‐Performance Self‐Powered Quantum Dot Infrared Photodetector with Azide Ion Solution Treated Electron Transport Layer

Author:

Choi Young Kyun1ORCID,Kim Tae Hyuk2,Jung Byung Ku1,Park Taesung1,Lee Yong Min3,Oh Seongkeun1,Choi Hyung Jin1,Park Junhyeok1,Bae Sang‐In4,Lee YunKi4,Shim Jae Won2,Park Hye Yeon4,Oh Soong Ju1ORCID

Affiliation:

1. Department of Materials Science and Engineering Korea University Seoul 02841 Republic of Korea

2. School of Electrical Engineering Korea University Seoul 02841 Republic of Korea

3. Department of Semiconductor Systems Engineering Korea University Seoul 02841 Republic of Korea

4. Samsung Electronics Co. Ltd Yongin‐si 17113 Republic of Korea

Abstract

AbstractThe demand for self‐powered photodetectors (PDs) capable of NIR detection without external power is growing with the advancement of NIR technologies such as LIDAR and object recognition. Lead sulfide quantum dot‐based photodetectors (PbS QPDs) excel in NIR detection; however, their self‐powered operation is hindered by carrier traps induced by surface defects and unfavorable band alignment in the zinc oxide nanoparticle (ZnO NP) electron‐transport layer (ETL). In this study, an effective azide‐ion (N3) treatment is introduced on a ZnO NP ETL to reduce the number of traps and improve the band alignment in a PbS QPD. The ZnO NP ETL treated with azide ions exhibited notable improvements in carrier lifetime and mobility as well as an enhanced internal electric field within the thin‐film heterojunction of the ZnO NPs and PbS QDs. The azide‐ion‐treated PbS QPD demonstrated a increase in short‐circuit current density upon NIR illumination, marking a responsivity of 0.45 A W−1, specific detectivity of 4 × 1011 Jones at 950 nm, response time of 8.2 µs, and linear dynamic range of 112 dB.

Funder

Ministry of Science, ICT and Future Planning

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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