Fast Near‐Infrared Photodetectors Based on Nontoxic and Solution‐Processable AgBiS2

Author:

Huang Yi‐Teng12,Nodari Davide3,Furlan Francesco3,Zhang Youcheng2,Rusu Marin4,Dai Linjie2,Andaji‐Garmaroudi Zahra2,Darvill Daniel5,Guo Xiaoyu1,Rimmele Martina6,Unold Thomas4,Heeney Martin36,Stranks Samuel D.27,Sirringhaus Henning2,Rao Akshay2,Gasparini Nicola3,Hoye Robert L. Z.15ORCID

Affiliation:

1. Inorganic Chemistry Laboratory Department of Chemistry University of Oxford South Parks Road Oxford OX1 3QR UK

2. Cavendish Laboratory University of Cambridge JJ Thomson Ave Cambridge CB3 0HE UK

3. Department of Chemistry and Centre for Processable Electronics Imperial College London White City Campus London W12 0BZ UK

4. Struktur und Dynamik von Energiematerialien Helmholtz‐Zentrum Berlin für Materialien und Energie 14109 Berlin Germany

5. Department of Materials Imperial College London Exhibition Road London SW7 2AZ UK

6. KAUST Solar Center, Physical Science and Engineering Division King Abdullah University of Science and Technology Thuwal 23955‐6900 Saudi Arabia

7. Department of Chemical Engineering and Biotechnology University of Cambridge Philippa Fawcett Drive Cambridge CB3 0AS UK

Abstract

AbstractSolution‐processable near‐infrared (NIR) photodetectors are urgently needed for a wide range of next‐generation electronics, including sensors, optical communications and bioimaging. However, it is rare to find photodetectors with >300 kHz cut‐off frequencies, especially in the NIR region, and many of the emerging inorganic materials explored are comprised of toxic elements, such as lead. Herein, solution‐processed AgBiS2 photodetectors with high cut‐off frequencies under both white light (>1 MHz) and NIR (approaching 500 kHz) illumination are developed. These high cut‐off frequencies are due to the short transit distances of charge‐carriers in the ultrathin photoactive layer of AgBiS2 photodetectors, which arise from the strong light absorption of this material, such that film thicknesses well below 120 nm are sufficient to absorb >65% of NIR to visible light. It is also revealed that ion migration plays a critical role in the photo‐response speed of these devices, and its detrimental effects can be mitigated by finely tuning the thickness of the photoactive layer, which is important for achieving low dark current densities as well. These outstanding characteristics enable the realization of air‐stable, real‐time heartbeat sensors based on NIR AgBiS2 photodetectors, which strongly motivates their future integration in high‐throughput systems.

Funder

China Scholarship Council

Royal Academy of Engineering

Engineering and Physical Sciences Research Council

European Research Council

Royal Society

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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