Tesfaye Meron, Kushner Douglas I, McCloskey Bryan D, Weber Adam Z, Kusoglu Ahmet
Chemical and Biomolecular Engineering, University of California-Berkeley, Berkeley, California 94720, United States.
Energy Technologies Area, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.
ACS Macro Lett. 2018 Oct 16;7(10):1237-1242. doi: 10.1021/acsmacrolett.8b00628. Epub 2018 Sep 20.
Thin perfluorosulfonated ion-conducting polymers (PFSI ionomers) in energy-conversion devices have limitations in functionality attributed to confinement-driven and surface-dependent interactions. This study highlights the effects of confinement and interface-dependent interactions of PFSI thin-films by exploring thin-film thermal transition temperature (). Change in in polymers is an indicator for chain relaxation and mobility with implications on properties like gas transport. This work demonstrates an increase in with decreasing PFSI film thickness in acid (H) form (from 70 to 130 °C for 400 to 10 nm, respectively). In metal cation (M) exchanged PFSI, remained constant with thickness. Results point to an interplay between increased chain mobility at the free surface and hindered motion near the rigid substrate interface, which is amplified upon further confinement. This balance is additionally impacted by ionomer intermolecular forces, as strong electrostatic networks within the PFSI-M matrix raises above the mainly hydrogen-bonded PFSI-H ionomer.
能量转换装置中的薄全氟磺酸离子导电聚合物(PFSI离聚物)在功能方面存在局限性,这归因于受限驱动和表面依赖性相互作用。本研究通过探索薄膜热转变温度()突出了PFSI薄膜的受限和界面依赖性相互作用的影响。聚合物中 的变化是链松弛和流动性的指标,对气体传输等性质有影响。这项工作表明,酸(H)形式的PFSI薄膜厚度减小时 会增加(对于400至10nm,分别从70℃至130℃)。在金属阳离子(M)交换的PFSI中, 随厚度保持恒定。结果表明,自由表面处链流动性增加与刚性基底界面附近运动受阻之间存在相互作用,进一步限定时这种相互作用会增强。这种平衡还受到离聚物分子间力的影响,因为PFSI - M基质内强大的静电网络使 高于主要为氢键结合的PFSI - H离聚物。