Zhong Shuangling, Wang Bin, Wang Minghui, Song Xudan, Liu Jiayu, Xie Ruida, Han Xing, Cui Xuejun
College of Resources and Environment, Jilin Agricultural University, Changchun 130118, PR China; Key Laboratory of Straw Comprehensive Utilization and Black Soil Conservation, Ministry of Education, Jilin Agricultural University, Changchun 130118, PR China.
College of Resources and Environment, Jilin Agricultural University, Changchun 130118, PR China.
Carbohydr Polym. 2024 Jan 15;324:121528. doi: 10.1016/j.carbpol.2023.121528. Epub 2023 Oct 25.
To develop the proton exchange membranes with excellent comprehensive performance, especially high methanol resistance, the multilayer biomembranes were first prepared by alternately depositing chitosan and self-made functionalized organosilane on the surface of crosslinked chitosan via layer-by-layer self-assembly and were further treated via immersing in sulfuric acid and then heating at high temperature. SEM and FTIR spectra confirmed the presence of thin self-assemble layers with good adhesion on the substrate due to the interactions and the condensation reaction. The introduction of self-assemble layers and crosslinked structure significantly improved the stability and methanol resistance of biomembrane. The methanol diffusion coefficient of 15 bilayers modified biomembrane was only 2.6 × 10 cm S in 12 M methanol, which was very favorable for its application in direct methanol fuel cell with high methanol concentration. Furthermore, the crosslinked multilayer biomembranes exhibited enhanced stability and the functionalized organosilane with high conductive groups ensured the biomembranes with better proton conductivity. The biomembrane with 15 bilayers showed extremely high selectivity value (1.05 × 10 Sscm), indicating its attractive potential as proton exchange membrane in direct methanol fuel cell.
为了开发具有优异综合性能,特别是高甲醇耐受性的质子交换膜,首先通过层层自组装在交联壳聚糖表面交替沉积壳聚糖和自制的功能化有机硅烷来制备多层生物膜,然后将其浸入硫酸中并在高温下加热进行进一步处理。扫描电子显微镜(SEM)和傅里叶变换红外光谱(FTIR)证实,由于相互作用和缩合反应,在基底上存在具有良好附着力的薄自组装层。自组装层和交联结构的引入显著提高了生物膜的稳定性和甲醇耐受性。在12 M甲醇中,15层改性生物膜的甲醇扩散系数仅为2.6×10⁻⁷ cm² S⁻¹,这对其在高甲醇浓度的直接甲醇燃料电池中的应用非常有利。此外,交联多层生物膜表现出增强的稳定性,具有高导电基团的功能化有机硅烷确保生物膜具有更好的质子传导性。具有15层的生物膜显示出极高的选择性值(1.05×10³ S cm⁻¹),表明其作为直接甲醇燃料电池中质子交换膜具有诱人的潜力。