A bioinspired and degradable riboflavin-containing polypeptide as a sustainable material for energy storage

S Shih-Guo Li (Department of Chemistry, Texas A&M University) K Khirabdhi T. Mohanty (Department of Chemical Engineering, Texas A&M University) A Alexandra D. Easley (Department of Chemical Engineering, Texas A&M University) Y Yohannes H. Rezenom (Department of Chemistry, Texas A&M University) S Soon-Mi Lim (Department of Chemistry, Texas A&M University) L Leyla P. Gillett (Department of Chemistry, Texas A&M University) S Stone D. Naquin (Department of Chemistry, Texas A&M University) D David K. Tran (Department of Chemistry, Texas A&M University) T Tan P. Nguyen (Department of Chemistry, Texas A&M University) J Jodie L. Lutkenhaus (Artie McFerrin Department of Chemical Engineering) K Karen L. Wooley (Department of Chemistry, Laboratory for Synthetic-Biologic Interactions, Texas A&M University)

Abstract

Inspired by Nature, we present a polypeptide-based organic redox-active material constructed from renewable feedstocks, L-glutamic acid (an amino acid) and riboflavin (vitamin B 2 ), to address challenges with start-to-end-of-life management in energy storage systems (ESSs). The amino acid was utilized to establish a degradable polymer backbone, along which many copies of riboflavin were incorporated to serve as the redox-active pendant groups that enabled energy storage. The overall synthesis involved the ring-opening polymerization (ROP) of an l -glutamic acid-derived N- carboxyanhydride (NCA) monomer, followed by side chain activation with azides and, finally, click coupling to achieve installation of alkyne-functionalized riboflavin moieties. The steric bulkiness and rich chemical functionality of riboflavin resulted in synthetic complexities that required reaction optimization to achieve the desired polymer structure. Electrochemical characterization of the resultant riboflavin polypeptide, in organic electrolyte, showed quasireversible redox activity with a half-wave potential (E 1/2 ) of ca. −1.10 V vs. ferrocene/ferrocenium (Fc/Fc + ). Cell viability assays revealed biocompatibility, as indicated by negligible cytotoxicity for fibroblast cells. The polypeptide design, consisting of labile amide backbone linkages and side-chain ester functionalities that tethered the riboflavin units to the backbone, enabled hydrolytic degradation to recover building blocks for future upcycling or recycling. This bioinspired strategy advances the development of degradable redox-active polymers and promotes sustainable materials design for circular energy storage technologies.

Article Details

Volume / Issue Vol. 122, Issue 26
Published July 01, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

S

Shih-Guo Li

Department of Chemistry, Texas A&M University

K

Khirabdhi T. Mohanty

Department of Chemical Engineering, Texas A&M University

A

Alexandra D. Easley

Department of Chemical Engineering, Texas A&M University

Y

Yohannes H. Rezenom

Department of Chemistry, Texas A&M University

S

Soon-Mi Lim

Department of Chemistry, Texas A&M University

L

Leyla P. Gillett

Department of Chemistry, Texas A&M University

S

Stone D. Naquin

Department of Chemistry, Texas A&M University

D

David K. Tran

Department of Chemistry, Texas A&M University

T

Tan P. Nguyen

Department of Chemistry, Texas A&M University

J

Jodie L. Lutkenhaus

Artie McFerrin Department of Chemical Engineering

K

Karen L. Wooley

Department of Chemistry, Laboratory for Synthetic-Biologic Interactions, Texas A&M University