Dark Current in Broadband Perovskite–Organic Heterojunction Photodetectors Controlled by Interfacial Energy Band Offset

Author:

Nodari Davide1,Hart Lucy J. F.1,Sandberg Oskar J.23,Furlan Francesco1,Angela Edoardo4,Panidi Julianna1,Qiao Zhuoran1,McLachlan Martyn A.4,Barnes Piers R. F.5,Durrant James R.16,Ardalan Armin2,Gasparini Nicola1ORCID

Affiliation:

1. Department of Chemistry and Centre for Processable Electronics Imperial College London White City Campus, 82 Wood Lane London W12 0BZ UK

2. Sustainable Advanced Materials (Sêr‐SAM) Department of Physics Swansea University Singleton Park Swansea Wales SA2 8PP UK

3. Physics, Faculty of Science and Engineering Åbo Akademi University Henrikinkatu 2 Turku 20500 Finland

4. Department of Materials Imperial College London South Kensington Campus London SW7 2AZ UK

5. Department of Physics Imperial College London South Kensington Campus London SW7 2AZ UK

6. Department of Materials Science and Engineering and SPECIFIC IKC Swansea University Bay Campus, Fabian Way Swansea Wales SA1 8EN UK

Abstract

AbstractLead halide perovskite and organic semiconductors are promising classes of materials for photodetector (PD) applications. State‐of‐the‐art perovskite PDs have performance metrics exceeding silicon PDs in the visible. While organic semiconductors offer bandgap tunability due to their chemical design with detection extended into the near‐infrared (NIR), perovskites are limited to the visible band and the first fraction of the NIR spectrum. In this work, perovskite–organic heterojunction (POH) PDs with absorption up to 950 nm are designed by the dual contribution of perovskite and the donor:acceptor bulk‐heterojunction (BHJ), without any intermediate layer. The effect of the energetics of the donor materials is systematically studied on the dark current (Jd) of the device by using the PBDB‐T polymer family. Combining the experimental results with drift‐diffusion simulations, it is shown that Jd in POH devices is limited by thermal generation via deep trap states in the BHJ. Thus, the best performance is obtained for the PM7‐based POH, which delivers an ultra‐low noise current of 2 × 10−14 A Hz−1/2 and high specific detectivity of 4.7 × 1012 Jones in the NIR. Last, the application of the PM7‐based POH devices as NIR pulse oximeter with high‐accuracy heartbeat monitoring at long‐distance of 2 meters is demonstrated.

Funder

Engineering and Physical Sciences Research Council

Horizon 2020 Framework Programme

Global Collaborative Research, King Abdullah University of Science and Technology

Publisher

Wiley

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