Self‐Powering Sensory Device with Multi‐Spectrum Image Realization for Smart Indoor Environments

Author:

Kim Tae Hyuk1,Yu Byoung‐Soo23,Ko Hyun Woo24,Park Na Won5,Saeed Muhammad Ahsan1,Ahn Jongtae2,Jo Suyeon12,Kim Dae‐Yeon6,Yoon Seon Kyu7,Lee Kwang‐Hoon7,Jeong Sang Young8,Woo Han Young8,Kim Hyunwoo J.4,Kim Tae Geun1,Park JaeHong5,Park Min‐Chul124,Hwang Do Kyung239,Shim Jae Won1ORCID

Affiliation:

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

2. Center for Opto‐Electronic Materials and Devices Post‐Silicon Semiconductor Institute Korea Institute of Science and Technology (KIST) Seoul 02792 Republic of Korea

3. Division of Nanoscience and Technology KIST School University of Science and Technology (UST) Seoul 02792 Republic of Korea

4. Department of Computer Science and Engineering Korea University Seoul 02841 Republic of Korea

5. Department of Chemistry and Nanoscience Ewha Womans University Seoul 03760 Republic of Korea

6. Department of Art and Technology Seokyeong University Seoul 02713 Republic of Korea

7. Spatial Optical Information Research Center Korea Photonics Technology Institute (KOPTI) Gwangju 61007 Republic of Korea

8. Department of Chemistry Korea University Seoul 02841 Republic of Korea

9. KU‐KIST Graduate School of Converging Science and Technology Korea University Seoul 02841 Republic of Korea

Abstract

AbstractThe development of organic‐based optoelectronic technologies for the indoor Internet of Things market, which relies on ambient energy sources, has increased, with organic photovoltaics (OPVs) and photodetectors (OPDs) considered promising candidates for sustainable indoor electronic devices. However, the manufacturing processes of standalone OPVs and OPDs can be complex and costly, resulting in high production costs and limited scalability, thus limiting their use in a wide range of indoor applications. This study uses a multi‐component photoactive structure to develop a self‐powering dual‐functional sensory device with effective energy harvesting and sensing capabilities. The optimized device demonstrates improved free‐charge generation yield by quantifying charge carrier dynamics, with a high output power density of over 81 and 76 µW cm−2 for rigid and flexible OPVs under indoor conditions (LED 1000 lx (5200 K)). Furthermore, a single‐pixel image sensor is demonstrated as a feasible prototype for practical indoor operating in commercial settings by leveraging the excellent OPD performance with a linear dynamic range of over 130 dB in photovoltaic mode (no external bias). This apparatus with high‐performance OPV‐OPD characteristics provides a roadmap for further exploration of the potential, which can lead to synergistic effects for practical multifunctional applications in the real world by their mutual relevance.

Funder

National Research Foundation of Korea

Korea Institute of Science and Technology

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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