Gyeong-Chan Kang, Moon Jeong Park
Achieving high ionic conductivity in solid polymer electrolytes remains challenging because of the strong coupling between ion transport and polymer segmental dynamics. In this study, a molecular design strategy simultaneously enhances the ionic conductivity and mechanical strength in fully sulfonated polystyrenes. The meta -substitution of −SO 3 H groups (PS3S), unlike the conventional para -substituted analog (PS4S), facilitated intrachain hydrogen bonding and resulted in a 3-fold increase in the ionization degree to ∼71%. Unexpectedly, PS3S exhibited a glass transition temperature ( T g ) 100 °C lower than that of conventional PS4S. Incorporating an additional −OH group at the para -position adjacent to −SO 3 H yielded a bifunctional polymer capable of coplanar intramonomer hydrogen bonding, which raised the T g by approximately 50 °C and further increased the ionization degree to about 86%. Upon doping with ionic liquids, the system achieved 0.2 mS cm –1 at 250 MPa (25 °C) and 9.2 mS cm –1 at 0.8 MPa (120 °C), shifting the conductivity-modulus relationship toward that of superionic inorganic conductors.