Literature DB >> 26942835

Directed Self-Assembly of Block Copolymers for High Breakdown Strength Polymer Film Capacitors.

Saumil P Samant1, Christopher A Grabowski2, Kim Kisslinger3, Kevin G Yager3, Guangcui Yuan4, Sushil K Satija4, Michael F Durstock2, Dharmaraj Raghavan5, Alamgir Karim1.   

Abstract

Emerging needs for fast charge/discharge yet high-power, lightweight, and flexible electronics requires the use of polymer-film-based solid-state capacitors with high energy densities. Fast charge/discharge rates of film capacitors on the order of microseconds are not achievable with slower charging conventional batteries, supercapacitors and related hybrid technologies. However, the current energy densities of polymer film capacitors fall short of rising demand, and could be significantly enhanced by increasing the breakdown strength (EBD) and dielectric permittivity (εr) of the polymer films. Co-extruded two-homopolymer component multilayered films have demonstrated much promise in this regard showing higher EBD over that of component polymers. Multilayered films can also help incorporate functional features besides energy storage, such as enhanced optical, mechanical, thermal and barrier properties. In this work, we report accomplishing multilayer, multicomponent block copolymer dielectric films (BCDF) with soft-shear driven highly oriented self-assembled lamellar diblock copolymers (BCP) as a novel application of this important class of self-assembling materials. Results of a model PS-b-PMMA system show ∼50% enhancement in EBD of self-assembled multilayer lamellar BCP films compared to unordered as-cast films, indicating that the breakdown is highly sensitive to the nanostructure of the BCP. The enhancement in EBD is attributed to the "barrier effect", where the multiple interfaces between the lamellae block components act as barriers to the dielectric breakdown through the film. The increase in EBD corresponds to more than doubling the energy storage capacity using a straightforward directed self-assembly strategy. This approach opens a new nanomaterial paradigm for designing high energy density dielectric materials.

Entities:  

Keywords:  barrier effect; block copolymer; breakdown strength; capacitor; cold zone annealing−soft shear; dielectric; directed self-assembly; lamellae

Year:  2016        PMID: 26942835     DOI: 10.1021/acsami.5b11851

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  3 in total

1.  Electroactive materials with tunable response based on block copolymer self-assembly.

Authors:  Ivan Terzic; Niels L Meereboer; Mónica Acuautla; Giuseppe Portale; Katja Loos
Journal:  Nat Commun       Date:  2019-02-05       Impact factor: 14.919

2.  Enhanced Dielectric Strength and Capacitive Energy Density of Cyclic Polystyrene Films.

Authors:  Maninderjeet Singh; Mei Dong; Wenjie Wu; Roushanak Nejat; David K Tran; Nihar Pradhan; Dharmaraj Raghavan; Jack F Douglas; Karen L Wooley; Alamgir Karim
Journal:  ACS Polym Au       Date:  2022-06-23

Review 3.  Recent Advances in the Synthesis of Polymer-Grafted Low-K and High-K Nanoparticles for Dielectric and Electronic Applications.

Authors:  Bhausaheb V Tawade; Ikeoluwa E Apata; Nihar Pradhan; Alamgir Karim; Dharmaraj Raghavan
Journal:  Molecules       Date:  2021-05-15       Impact factor: 4.411

  3 in total

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