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Electronic and Structural Properties of the Polymer-Electrolyte Interphase in Electrochemically Doped Polymers

  • Megan Brown
  • , Shuya Li
  • , Jonathan Thurston
  • , William Kopcha
  • , Joel Bombile
  • , Sa Suo
  • , Bo Dong
  • , Zhiting Chen
  • , Qi Sun
  • , Dennis Norlund
  • , Luis Iglesias
  • , Collin Sindt
  • , Santosh Kumar
  • , David Grinter
  • , Arianna Magni
  • , Obadiah Reid
  • , Andrew Ferguson
  • , Elisa Miller
  • , Annie Greenaway
  • , Hong Li
  • Jean-Luc Bredas, Matthew Bird, Neal Armstrong, Alberto Salleo, Tianquan Lian, Michael Toney, Erin Ratcliff, Chad Risko
  • University of Kentucky
  • University of Colorado Boulder
  • Emory University
  • University of Arizona
  • SLAC National Accelerator Laboratory
  • Diamond Light Source
  • Stanford University
  • Brookhaven National Laboratory
  • Georgia Institute of Technology

Research output: NLRPoster

Abstract

The advance of soft, polymer-based (photo)electrochemical energy transformation and storage applications requires a framework for polymer and electrolyte design that includes a deep understanding of the polymer–electrolyte interphase. Here, we report on the investigations of two napthalenediimide (NDI)–bithiophene (T2)-based semiconducting copolymers using computational modeling and in situ, ex situ, and operando techniques to reveal how changes in electrolyte and polymer chemistry modulate the electronic and structural properties of polymer electrodes during electrochemical (de)doping. These systems are shown to host an ensemble of polarons, in contrast with the single polaron-like character often reported, whose properties vary with the nature of the local environment. Importantly, these polarons serve as reporters of the nanoscale environments in which they reside. We demonstrate that controlling the polymer and electrolyte chemistry regulates the nature of the charge carriers generated upon electrochemical doping and/or exciton dissociation in a photoelectrochemical solar cell: For instance, divalent counterions enable polaron and bipolaron formation at lower reducing potentials, while supporting more bipolaron formation than monovalent counterions. A novel application of NEXAFS reveals insights into charge (de)localization, providing a pathway for future investigation of electron transport mechanisms. Finally, simulations of polymer swelling of an amorphous interphase show that charge formation has a large impact on polymer swelling and ion penetration. These studies deliver insights to enable the control of charge-carrier and ion transport, the rates of electron transfer and catalytic efficiency, device stability, and overall device performance.
Original languageAmerican English
PublisherNational Laboratory of the Rockies (NLR)
Number of pages1
DOIs
StatePublished - 2025

Publication series

NamePresented at the 2025 EFRC-Hub-CMS-CCS PI Meeting, 11-12 August 2025, Bethesda, Maryland

NLR Publication Number

  • NLR/PO-5900-96461

Keywords

  • charge transport
  • electrochemical doping
  • photoelectrochemistry
  • polymer-electrolyte interphase

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