Lee Hung-Fan, Chang Jing-Yue, Chen-Yang Yui Whei
Department of Chemistry, Chung Yuan Christian University 200 Chung Pei Road, Chung Li District, Taoyuan City Taiwan 32023 Republic of China.
Center for Nanotechnology and Center for Biomedical Technology, Chung Yuan Christian University 200 Chung Pei Road, Chung Li District Taoyuan City Taiwan 32023 Republic of China
RSC Adv. 2018 Jun 20;8(40):22506-22514. doi: 10.1039/c8ra02062k. eCollection 2018 Jun 19.
Gas diffusion layer (GDL) is an important component related to the efficiency of proton exchange membrane fuel cells (PEMFCs). Nevertheless, the preparation cost of the conventional GDL is high. In our previous studies, a single-layer gas diffusion layer (SL-GDL) prepared by a simple and cost-effective process has been used for PEMFCs, and it achieved 85% efficiency of a commonly used commercial GDL. In this study, improvement in physical properties of a series of single-layer gas diffusion layers, SL-GDL-G ( = 1-3), uniform distribution of graphene in the SL-GDL, and the application of SL-GDL-G in PEMFCs are studied. The results indicate that the presence of well-distributed graphene layers in SL-GDL-Gs causes an increase in the surface roughness and the formation of irregular slender interstices, leading to the enhancement of gas permeability while maintaining the microporous layer (MPL)-like microstructure and retaining good loading and efficient utilization of the catalyst. Moreover, the electrical resistivities significantly decreased and the mechanical properties improved. These improvements in physical properties are significantly beneficial for the performance of PEMFC. The single-cell performance tests show that the best performance measured at 80 °C under 99.9% relative humidity (RH) conditions is obtained from the PEMFC (FC-2) fabricated with SL-GDL-G2 and is 46% higher than that from FC-0 with SL-GDL-G0 without graphene and 15% higher than that from FC-3 with the commercial GDL. Furthermore, the performances of FC-2 measured at 50-80 °C under 15% RH are all much higher than those of FC-3. The results indicate that SL-GDL-G2 prepared a cost-effective method is a potential GDL for PEMFCs.
气体扩散层(GDL)是与质子交换膜燃料电池(PEMFC)效率相关的重要组件。然而,传统GDL的制备成本很高。在我们之前的研究中,通过简单且经济高效的工艺制备的单层气体扩散层(SL-GDL)已用于PEMFC,其效率达到了常用商业GDL的85%。在本研究中,对一系列单层气体扩散层SL-GDL-G( = 1 - 3)的物理性能改进、石墨烯在SL-GDL中的均匀分布以及SL-GDL-G在PEMFC中的应用进行了研究。结果表明,SL-GDL-G中分布良好的石墨烯层的存在导致表面粗糙度增加和不规则细长间隙的形成,从而在保持微孔层(MPL)状微观结构并保持催化剂良好负载和高效利用的同时提高了气体渗透性。此外,电阻率显著降低,机械性能得到改善。这些物理性能的改进对PEMFC的性能非常有益。单电池性能测试表明,在80°C、相对湿度(RH)99.9%的条件下测得的最佳性能来自使用SL-GDL-G2制造的PEMFC(FC-2),比没有石墨烯的SL-GDL-G0的FC-0高46%,比使用商业GDL的FC-3高15%。此外,在50 - 80°C、15% RH条件下测得的FC-2的性能均远高于FC-3。结果表明,通过经济高效的方法制备的SL-GDL-G2是PEMFC的潜在GDL。