High‐Performance Wearable Organic Photodetectors by Molecular Design and Green Solvent Processing for Pulse Oximetry and Photoplethysmography

Author:

Du Zhifang1ORCID,Luong Hoang Mai1ORCID,Sabury Sina2,Jones Austin L.2ORCID,Zhu Ziyue1ORCID,Panoy Patchareepond1,Chae Sangmin1,Yi Ahra3,Kim Hyo Jung3,Xiao Steven4,Brus Viktor V.5ORCID,Manjunatha Reddy G. N.6,Reynolds John R.2,Nguyen Thuc‐Quyen1ORCID

Affiliation:

1. Center for Polymers and Organic Solids Department of Chemistry and Biochemistry University of California at Santa Barbara Santa Barbara CA 93106 USA

2. School of Chemistry and Biochemistry School of Materials Science and Engineering Center for Organic Photonics and Electronics Georgia Tech Polymer Network Georgia Institute of Technology Atlanta GA 30332 USA

3. Department of Organic Materials Science and Engineering School of Chemical Engineering Pusan National University Busan 46241 Republic of Korea

4. 1‐Material Inc 2290 Chemin St‐Francois Dorval Quebec H9P 1K2 Canada

5. Department of Physics, School of Sciences and Humanities Nazarbayev University Nur‐Sultan City 010000 Republic of Kazakhstan

6. University of Lille, CNRS Centrale Lille Institut Univ. Artois UMR 8181, Unité de Catalyse et Chimie du Solide Lille F‐59000 France

Abstract

AbstractWhite‐light detection from the visible to the near‐infrared region is central to many applications such as high‐speed cameras, autonomous vehicles, and wearable electronics. While organic photodetectors (OPDs) are being developed for such applications, several challenges must be overcome to produce scalable high‐detectivity OPDs. This includes issues associated with low responsivity, narrow absorption range, and environmentally friendly device fabrication. Here, an OPD system processed from 2‐methyltetrahydrofuran (2‐MeTHF) sets a record in light detectivity, which is also comparable with commercially available silicon‐based photodiodes is reported. The newly designed OPD is employed in wearable devices to monitor heart rate and blood oxygen saturation using a flexible OPD‐based finger pulse oximeter. In achieving this, a framework for a detailed understanding of the structure–processing–property relationship in these OPDs is also developed. The bulk heterojunction (BHJ) thin films processed from 2‐MeTHF are characterized at different length scales with advanced techniques. The BHJ morphology exhibits optimal intermixing and phase separation of donor and acceptor moieties, which facilitates the charge generation and collection process. Benefitting from high charge carrier mobilities and a low shunt leakage current, the newly developed OPD exhibits a specific detectivity of above 1012 Jones over 400–900 nm, which is higher than those of reference devices processed from chlorobenzene and ortho‐xylene.

Funder

H2020 Marie Skłodowska-Curie Actions

Office of Naval Research

Air Force Office of Scientific Research

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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