Boosting the Performances of Semitransparent Organic Photovoltaics via Synergetic Near‐Infrared Light Management

Author:

Xu Tao1ORCID,Deng Baozhong1,Zheng Kaiwen1,Li Hongyu1,Wang Zihan1,Zhong Yunbo2,Zhang Chengxi3,Lévêque Gaëtan4ORCID,Grandidier Bruno4,Bachelot Renaud56,Treguer‐Delapierre Mona7,Qi Yabing8,Wang Shenghao1ORCID

Affiliation:

1. School of Microelectronics and Materials Genome Institute Shanghai University Shanghai 200444 China

2. School of Materials Science and Engineering Shanghai University Shanghai 200444 China

3. School of Science Jiangsu University of Science and Technology Zhenjiang 212100 China

4. Univ. Lille CNRS Centrale Lille Univ. Polytechnique Hauts‐de‐France Junia‐ISEN UMR 8520 – IEMN Lille 59000 France

5. Light nanomaterials nanotechnologies (L2n) CNRS ERL 7004 University of Technology of Troyes Troyes F‐10004 France

6. EEE School Nanyang Technological University CNRS IRL CINTRA 3288 Singapore

7. Univ. Bordeaux CNRS Bordeaux INP ICMCB UMR 5026 Pessac F‐33600 France

8. Energy Materials and Surface Sciences Unit (EMSSU) Okinawa Institute of Science and Technology Graduate University (OIST) 1919‐1 Tancha, Onna‐son Okinawa 904‐0495 Japan

Abstract

AbstractSemitransparent organic photovoltaics (ST‐OPVs) offer promising prospects for application in building‐integrated photovoltaic systems and greenhouses, but further improvement of their performance faces a delicate trade‐off between the two competing indexes of power conversion efficiency (PCE) and average visible transmittance (AVT). Herein, the authors take advantage of coupling plasmonics with the optical design of ST‐OPVs to enhance near‐infrared absorption and hence simultaneously improve efficiency and visible transparency to the maximum extent. By integrating core–bishell PdCu@Au@SiO2 nanotripods that act as optically isotropic Lambertian sources with near‐infrared‐customized localized surface plasmon resonance in an optimal ternary PM6:BTP‐eC9:L8‐BO‐based ST‐OPV, it is shown that their interplay with a multilayer optical coupling layer, consisting of ZnS(130 nm)/Na3AlF6(60 nm)/WO3(100 nm)/LaF3(50 nm) identified from high‐throughput optical screening, leads to a record‐high PCE of 16.14% (certified as 15.90%) along with an excellent AVT of 33.02%. The strong enhancement of the light utilization efficiency by ≈50% as compared to the counterpart device without optical engineering provides an encouraging and universal pathway for promoting breakthroughs in ST‐OPVs from meticulous optical design.

Funder

National Natural Science Foundation of China

Program for Professor of Special Appointment (Eastern Scholar) at Shanghai Institutions of Higher Learning

Shanghai Rising-Star Program

Internationale Graduiertenschule in BioNanoTechnologie

Songshan Lake Materials Laboratory

Publisher

Wiley

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