High Polymer Molecular Weight Yields Solar Cells with Simultaneously Improved Performance and Thermal Stability

Author:

Riera‐Galindo Sergi1ORCID,Sanz‐Lleó Marta12ORCID,Gutiérrez‐Fernández Edgar3,Ramos Nicolás3,Mas‐Torrent Marta1ORCID,Martín Jaime34ORCID,López‐Mir Laura2,Campoy‐Quiles Mariano1ORCID

Affiliation:

1. Institute of Materials Science of Barcelona ICMAB‐CSIC Campus Universitat Autònoma de Barcelona (UAB) Bellaterra 08193 Barcelona Spain

2. Eurecat Centre Tecnològic de Catalunya Unit of Printed Electronics & Embedded Devices Av. d'Ernest Lluch 36 Mataró 08302 Spain

3. POLYMAT and Polymer Science and Technology Department Faculty of Chemistry University of the Basque Country UPV/EHU Donostia‐San Sebastián 20018 Spain

4. Universidade da Coruña Campus Industrial de Ferrol CITENI, Esteiro Ferrol 15403 Spain

Abstract

AbstractSimple synthetic routes, high active layer thickness tolerance as well as stable organic solar cells are relentlessly pursued as key enabling traits for the upscaling of organic photovoltaics. Here, the potential to address these issues by tuning donor polymer molecular weight is investigated. Specifically, the focus is on PTQ10, a polymer with low synthetic complexity, with number average molecular weights of 2.4, 6.2, 16.8, 52.9, and 54.4 kDa, in combination with three different non‐fullerene acceptors, namely Y6, Y12, and IDIC. Molecular weight, indeed, unlocks a threefold increase in power conversion efficiency for these blends. Importantly, efficiencies above 10% for blade coated devices with thicknesses between 200 and 350 nm for blends incorporating high molecular weight donor are shown. Spectroscopic, GIWAXS and charge carrier mobility data suggest that the strong photocurrent improvement with molecular weight is related to both, improved electronic transport and polymer contribution to exciton generation. Moreover, it is demonstrated that solar cells based on high molecular weight PTQ10 are more thermally stable due to a higher glass transition temperature, thus also improving device stability.

Funder

Horizon 2020

Ministerio de Ciencia e Innovación

H2020 Marie Skłodowska-Curie Actions

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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