Polarizable H‐Bond Concept in Aromatic Poly(thiourea)s: Unprecedented High Refractive Index, Transmittance, and Degradability at Force to Enhance Lighting Efficiency

Author:

Watanabe Seigo1,Cavinato Luca M.2ORCID,Calvi Vladimir3,van Rijn Richard3,Costa Rubén D.2ORCID,Oyaizu Kenichi1

Affiliation:

1. Department of Applied Chemistry and Research Institute for Science and Engineering Waseda University Tokyo 169‐8555 Japan

2. Chair of Biogenic Functional Materials Technical University of Munich, TUM Campus Straubing for Biotechnology and Sustainability Schulgasse 22 94315 Straubing Germany

3. Applied Nanolayers B.V. Feldmannweg 17 2628 CD Delft The Netherlands

Abstract

AbstractDeveloping transparent and highly refractive environmentally friendly polymers has not been realized yet toward sustainable optoelectronics. This work describes poly(thiourea)s (PTUs) design following a new “polarizable group synergy” concept, combining highly polarizable hydrogen bonding groups and aromatic‐based spacers to form densely packed and high‐refractive‐index polymer networks. Specifically, PTUs containing m‐ and p‐phenylene spacers exhibit an easy synthesis, high thermostability (Tg = 159 °C), visible transparency (>92%T at 1 µm‐film), ultra‐high refractive index (nD = 1.81) based on the random H‐bonding arrays with a high packing constant (Kp = 0.738), and straightforward preparation of flexible films via solvent‐based techniques. Capitalizing on these assets, PTU‐films are integrated into benchmark graphene‐based lighting device architectures based on the light‐emitting electrochemical cells (LECs) concept. A joint optical modeling and experimental validation confirm the increase in external quantum efficiency expected by the enhanced light out‐coupling of PTU‐films. Finally, PTUs are efficiently depolymerized to low molecular weight compounds by simply adding diamines under heating, following the dynamic covalent bond exchange between thiourea moieties. Overall, this work highlights the PTU family as new promising materials with a unique polarizable H‐bond design to meet efficient and sustainable thin‐film lighting devices.

Funder

Ministry of Education, Culture, Sports, Science and Technology

Publisher

Wiley

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