Massaglia Giulia, Serra Tommaso, Pirri Fabrizio Candido, Quaglio Marzia
Department of Applied Science and Technology, Politecnico of Turin, Corso Duca degli Abruzzi 29, 10129 Torino, Italy.
Center for Sustainable Future and Technologies, Italian Institute of Technology, Via Livorno 60, 10100 Torino, Italy.
Nanomaterials (Basel). 2023 Oct 21;13(20):2801. doi: 10.3390/nano13202801.
This work investigates a new nanostructured gas diffusion layer (nano-GDL) to improve the performance of air cathode single-chamber microbial fuel cells (a-SCMFCs). The new nano-GDLs improve the direct oxygen reduction reaction by exploiting the best qualities of nanofibers from electrospinning in terms of high surface-area-to-volume ratio, high porosity, and laser-based processing to promote adhesion. By electrospinning, nano-GDLs were fabricated directly by collecting two nanofiber mats on the same carbon-based electrode, acting as the substrate. Each layer was designed with a specific function: water-resistant, oxygen-permeable polyvinylidene-difluoride (PVDF) nanofibers served as a barrier to prevent water-based electrolyte leakage, while an inner layer of cellulose nanofibers was added to promote oxygen diffusion towards the catalytic sites. The maximum current density obtained for a-SCMFCs with the new nano-GDLs is 132.2 ± 10.8 mA m, and it doubles the current density obtained with standard PTFE-based GDL (58.5 ± 2.4 mA m) used as reference material. The energy recovery (EF) factor, i.e., the ratio of the power output to the inner volume of the device, was then used to evaluate the overall performance of a-SCMFCs. a-SCMFCs with nano-GDL provided an EF value of 60.83 mJ m, one order of magnitude higher than the value of 3.92 mJ m obtained with standard GDL.
这项工作研究了一种新型纳米结构气体扩散层(nano-GDL),以提高空气阴极单室微生物燃料电池(a-SCMFCs)的性能。新型nano-GDL通过利用静电纺丝纳米纤维在高比表面积、高孔隙率方面的最佳特性以及基于激光的加工来促进附着力,从而改善直接氧还原反应。通过静电纺丝,直接在作为基底的同一碳基电极上收集两个纳米纤维垫来制备nano-GDL。每一层都设计有特定功能:防水、透气的聚偏二氟乙烯(PVDF)纳米纤维用作防止水基电解质泄漏的屏障,同时添加内层纤维素纳米纤维以促进氧气向催化位点扩散。采用新型nano-GDL的a-SCMFCs获得的最大电流密度为132.2±10.8 mA/m,是用作参考材料的标准基于聚四氟乙烯的GDL(58.5±2.4 mA/m)所获电流密度的两倍。然后使用能量回收(EF)因子,即功率输出与装置内部体积之比,来评估a-SCMFCs的整体性能。采用nano-GDL的a-SCMFCs的EF值为60.83 mJ/m³,比使用标准GDL获得的3.92 mJ/m³的值高一个数量级。