A Rational Design of Isoindigo‐Based Conjugated Microporous n‐Type Semiconductors for High Electron Mobility and Conductivity

Author:

Ranjeesh Kayaramkodath Chandran1,Rezk Ayman2ORCID,Martinez Jose Ignacio3,Gaber Safa1,Merhi Areej4,Skorjanc Tina5,Finšgar Matjaž6,Luckachan Gisha Elizabeth1,Trabolsi Ali78,Kaafarani Bilal R.4ORCID,Nayfeh Ammar2,Shetty Dinesh19ORCID

Affiliation:

1. Department of Chemistry Khalifa University Abu Dhabi P.O. Box 127788 UAE

2. Department of Electrical Engineering and Computer Science Khalifa University Abu Dhabi P.O. Box 127788 UAE

3. Department of Low‐Dimensional Systems Instituto de Ciencia de Materiales de Madrid‐CSIC C/ Sor Juana Inés de la Cruz 3 Madrid 28049 Spain

4. Department of Chemistry American University of Beirut Beirut 1107‐2020 Lebanon

5. Materials Research Laboratory University of Nova Gorica Vipavska cesta 11c Ajdovscina 5270 Slovenia

6. Faculty of Chemistry and Chemical Engineering University of Maribor Smetanova ulica 17 Maribor 2000 Slovenia

7. Science Division New York University Abu Dhabi Saadiyat Island Abu Dhabi P.O. Box 129188 UAE

8. NYUAD Water Research Center New York University Abu Dhabi (NYUAD) Saadiyat Island Abu Dhabi P.O. Box 129188 UAE

9. Advanced Materials Chemistry Center (AMCC) Khalifa University Abu Dhabi P.O. Box 127788 UAE

Abstract

AbstractThe development of n‐type organic semiconductors has evolved significantly slower in comparison to that of p‐type organic semiconductors mainly due to the lack of electron‐deficient building blocks with stability and processability. However, to realize a variety of organic optoelectronic devices, high‐performance n‐type polymer semiconductors are essential. Herein, conjugated microporous polymers (CMPs) comprising isoindigo acceptor units linked to benzene or pyrene donor units (BI and PI) showing n‐type semiconducting behavior are reported. In addition, considering the challenges of deposition of a continuous and homogeneous thin film of CMPs for accurate Hall measurements, a plasma‐assisted fabrication technique is developed to yield uniform thin films. The fully conjugated 2D networks in PI‐ and BI‐CMP films display high electron mobility of 6.6 and 3.5 cm2 V−1 s−1, respectively. The higher carrier concentration in PI results in high conductivity (5.3 mS cm−1). Both experimental and computational studies are adequately combined to investigate structure–property relations for this intriguing class of materials in the context of organic electronics.

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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