Pendant Group Functionalization of Cyclic Olefin for High Temperature and High‐Density Energy Storage

Author:

Shukla Stuti1,Wu Chao2ORCID,Mishra Ankit3,Pan Junkun4ORCID,Charnay Aaron P.4ORCID,Khomane Ashish5,Deshmukh Ajinkya5,Zhou Jierui2,Mukherjee Madhubanti6,Gurnani Rishi6,Rout Pragati1,Casalini Riccardo7ORCID,Ramprasad Rampi6ORCID,Fayer Michael D.4ORCID,Vashishta Priya3ORCID,Cao Yang2ORCID,Sotzing Gregory1

Affiliation:

1. Department of Chemistry University of Connecticut Storrs CT 06269 USA

2. Electrical and Computer Engineering University of Connecticut Storrs CT 06269 USA

3. Collaboratory for Advanced Computing and Simulations Department of Chemical Engineering and Materials Science Department of Physics and Astronomy and Department of Computer Science University of Southern California Los Angeles CA 90089 USA

4. Department of Chemistry Stanford University Stanford CA 94305 USA

5. Institute of Materials Science University of Connecticut Storrs CT 06269 USA

6. School of Materials Science and Engineering Georgia Institute of Technology Atlanta GA 30332 USA

7. Chemistry Division US Naval Research Laboratory Washington DC 20375 USA

Abstract

AbstractHigh‐temperature flexible polymer dielectrics are critical for high density energy storage and conversion. The need to simultaneously possess a high bandgap, dielectric constant and glass transition temperature forms a substantial design challenge for novel dielectric polymers. Here, by varying halogen substituents of an aromatic pendant hanging off a bicyclic mainchain polymer, a class of high‐temperature olefins with adjustable thermal stability are obtained, all with uncompromised large bandgaps. Halogens substitution of the pendant groups at para or ortho position of polyoxanorborneneimides (PONB) imparts it with tunable high glass transition from 220 to 245 °C, while with high breakdown strength of 625–800 MV/m. A high energy density of 7.1 J/cc at 200 °C is achieved with p‐POClNB, representing the highest energy density reported among homo‐polymers. Molecular dynamic simulations and ultrafast infrared spectroscopy are used to probe the free volume element distribution and chain relaxations pertinent to dielectric thermal properties. An increase in free volume element is observed with the change in the pendant group from fluorine to bromine at the para position; however, smaller free volume element is observed for the same pendant when at the ortho position due to steric hindrance. With the dielectric constant and bandgap remaining stable, properly designing the pendant groups of PONB boosts its thermal stability for high density electrification.

Funder

Multidisciplinary University Research Initiative

Office of Naval Research

Publisher

Wiley

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