Exceptional Alignment in a Donor–Acceptor Conjugated Polymer via a Previously Unobserved Liquid Crystal Mesophase

Author:

Schrickx Harry M.1ORCID,Kashani Somayeh2ORCID,Buck Lauren1,Ding Kan2,Rech Jeromy J.3,Flagg Lucas Q.4,Li Ruipeng5,Kudenov Michael W.6,You Wei3,Richter Lee J.4,Ade Harald2ORCID,O'Connor Brendan T.1ORCID

Affiliation:

1. Department of Mechanical and Aerospace Engineering and Organic and Carbon Electronics Laboratories (ORaCEL) North Carolina State University Raleigh NC 27695 USA

2. Department of Physics and ORaCEL North Carolina State University Raleigh NC 27695 USA

3. Department of Chemistry University of North Carolina Chapel Hill NC 27599 USA

4. Materials Science and Engineering Division National Institute of Standards and Technology Gaithersburg MD 20899 USA

5. National Synchrotron Light Source II Brookhaven National Laboratory Upton NY 11973 USA

6. Department of Electrical and Computer Engineering North Carolina State University Raleigh NC 27695 USA

Abstract

AbstractOrienting polymer semiconductors is desirable to optimize device characteristics, provide insight into microstructure, and magnify subtle phase behavior. Here, a combination of uniaxial strain and subsequent heating of the donor–acceptor (DA) polymer PBnDT‐FTAZ is discovered to lead to exceptional optical dichroic ratios of up to 38 (and close to 50 near the polymer's absorption edge). This alignment is achieved due to the existence of a previously undetected thermotropic liquid crystal (LC) mesophase. The LC transition, not discernable through calorimetry, is uncovered through a combination of in situ UV–vis spectroscopy, X‐ray scattering, and dynamic mechanical analysis (DMA). Comparing PBnDT‐FTAZ to the non‐fluorinated PBnDT‐HTAZ and the homo polymer PBnDT, all of which show similar thermal transitions, reveals that exceptional alignment is only found in PBnDT‐FTAZ. This is attributed to the PBnDT‐FTAZ film having two distinct liquid crystal populations, and the polymer templating to a highly aligned, high‐clearing temperature population when heated. The DMA thermal relaxation behavior observed here is also seen in other DA conjugated polymers suggesting that such thermotropic LC mesophases may be common in these materials. These findings demonstrate a polymer semiconductor with remarkable alignment and uncover phase behavior with broad implications for process‐structure‐property relationships in polymer semiconductors.

Funder

Basic Energy Sciences

Office of Naval Research

National Science Foundation

Publisher

Wiley

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