Hawaii Natural Energy Institute, University of Hawaii, Honolulu, HI 96822, USA.
Enzyme Microb Technol. 2011 May 6;48(6-7):458-65. doi: 10.1016/j.enzmictec.2011.02.006. Epub 2011 Mar 3.
Chitosan (CHIT) scaffolds doped with multi-walled carbon nanotubes (CNT) were fabricated and evaluated for their utility as a microbial fuel cell (MFC) anodic material. High resolution microscopy verified the ability of Shewanella oneidensis MR-1 to directly colonize CHIT-CNT scaffolds. Cross-linking agents 1-ethyl-3-[3-dimethylaminopropyl] carbodimide hydrochloride (EDC), glutaraldehyde and glyoxal were independently studied for their ability to strengthen the CHIT-CNT matrix without disrupting the final pore structure. 2.5 vol% glyoxal was found to be the optimal cross-linker in terms of porosity (BET surface area=30.2 m(2) g(-1)) and structural stability. Glyoxyl and EDC cross-linked CHIT-CNT scaffolds were then studied for their ability to transfer electrons to underlying glassy carbon. Results showed an open circuit cell voltage of 600 mV and a maximum power density of 4.75 W/m(3) at a current density of 16 A/m(3) was achieved in non stirred batch mode, which compares well with published data using carbon felt electrodes where a power density of 3.5 W/m(3) at a current density of 7 A/m(3) have been reported. Additionally, CHIT-CNT scaffolds were impregnated into carbon felt electrodes and these results suggest that CHIT-CNT scaffolds can be successfully integrated with multiple support materials to create hybrid electrode materials. Further, preliminary tests indicate that the integrated scaffolds offer a robust macroporous electrode material that can be used in flow-through configurations.
壳聚糖(CHIT)支架掺杂多壁碳纳米管(CNT)被制备并评估其作为微生物燃料电池(MFC)阳极材料的用途。高分辨率显微镜证实了希瓦氏菌属(Shewanella oneidensis MR-1)能够直接定殖于 CHIT-CNT 支架上。交联剂 1-乙基-3-[3-二甲基氨基丙基]碳化二亚胺盐酸盐(EDC)、戊二醛和乙二醛被分别研究其作为增强 CHIT-CNT 基质的能力,而不破坏最终的孔结构。发现 2.5 体积%乙二醛是在孔隙率(BET 比表面积=30.2 m(2) g(-1))和结构稳定性方面的最佳交联剂。然后研究了乙二醛和 EDC 交联的 CHIT-CNT 支架将电子转移到底层玻璃碳的能力。结果表明,在非搅拌批处理模式下,开路电池电压为 600 mV,电流密度为 16 A/m(3)时最大功率密度为 4.75 W/m(3),与使用碳毡电极的已发表数据相比,在电流密度为 7 A/m(3)时,功率密度为 3.5 W/m(3)。此外,CHIT-CNT 支架被浸渍到碳毡电极中,这些结果表明 CHIT-CNT 支架可以与多种支撑材料成功集成,以创建混合电极材料。此外,初步测试表明,集成的支架提供了一种稳健的大孔电极材料,可用于流通配置。