Choi DongWoong
Department of Chemical Engineering, Dong-Eui University, Busan 47340, Korea.
Membranes (Basel). 2022 Jun 30;12(7):680. doi: 10.3390/membranes12070680.
In order to solve the challenge that battery performance rapidly deteriorates at a high temperature condition of 100 °C or higher, ZrO-TiO (ZT) with various Zr:Ti ratios synthesized by a sol-gel method were impregnated in a Nafion membrane. Through material characterization, a unique ZT crystal phase peak with a Zr-O-Ti bond was identified, and the band range associated with this bond and intrinsic functional group region could be identified. These prepared powders were blended with 10% (/) Nafion-water dispersion to prepare composite Nafion membranes (NZTs). The water uptake increased and the ion exchange capacity decreased as the TiO content increased in the NZTs in which particles were uniformly distributed. These results were superior to those of the conventional Nafion 112. The electrochemical properties of all membranes was measured using a polarization curve in a single cell with a reaction area of 9 cm, and the operating conditions in humidified H/air was 120 °C under 50% relative humidity (RH) and 2 atm. The composite membrane cell with nanoparticles of a Zr:Ti ratio of 1:3 (NZT13) exhibited the best electrochemical characteristics. These results can be explained by the improved physicochemical properties of NZT13, such as optimized water content and ion exchange capacity, strong intermolecular forces acting between water and nanofillers (δ), and increased tortuosity by the fillers (τ). The results of this study show that the NZT membrane can replace a conventional membrane under high-temperature and low-humidity conditions. To examine the effect of the content of the inorganic nanomaterials in the composite membrane, a composite membrane (NZT-20, NZT-30) having an inorganic nano-filler content of 20 or 30% (/) was also prepared. The performance was high in the order of NZT13, NZT-20, and NZT-30. This shows that not only the operating conditions but also the particle content can significantly affect the performance.
为了解决电池性能在100℃或更高的高温条件下迅速恶化的挑战,通过溶胶-凝胶法合成的具有不同Zr:Ti比的ZrO-TiO(ZT)被浸渍在Nafion膜中。通过材料表征,识别出了具有Zr-O-Ti键的独特ZT晶相峰,并且可以识别与该键和固有官能团区域相关的能带范围。将这些制备的粉末与10%(/)的Nafion-水分散体混合,以制备复合Nafion膜(NZT)。在颗粒均匀分布的NZT中,随着TiO含量的增加,吸水率增加而离子交换容量降低。这些结果优于传统的Nafion 112。使用反应面积为9平方厘米的单电池中的极化曲线测量所有膜的电化学性能,在加湿的H/空气中的操作条件为120℃、50%相对湿度(RH)和2个大气压。Zr:Ti比为1:3的纳米颗粒复合膜(NZT13)表现出最佳的电化学特性。这些结果可以通过NZT13改善的物理化学性质来解释,例如优化的含水量和离子交换容量、水与纳米填料之间作用的强分子间力(δ)以及填料导致的曲折度增加(τ)。本研究结果表明,NZT膜在高温低湿条件下可以替代传统膜。为了研究复合膜中无机纳米材料含量的影响,还制备了无机纳米填料含量为20%或30%(/)的复合膜(NZT-20、NZT-30)。性能按NZT13、NZT-20和NZT-30的顺序较高。这表明不仅操作条件,而且颗粒含量也会显著影响性能。