Graduate School of Energy and Environment, Seoul National University of Science and Technology, 232 Gongneung-ro, Nowon-gu, Seoul, 139-743, Republic of Korea.
Enzyme Microb Technol. 2017 Nov;106:1-10. doi: 10.1016/j.enzmictec.2017.06.012. Epub 2017 Jun 27.
New laccase-based catalysts to improve oxygen reduction reactions (ORR) are described, and enzymatic biofuel cells (EBCs) adopting these catalysts were developed. These new catalysts are synthesized by combining laccase, poly(ethylenimine) and carbon nanotubes, with attachment of selected elements using the crosslinker, glutaraldehyde (GA). Several characterization approaches are implemented to evaluate catalytic electron transfer in both the absence and presence of mediators and their effects on glucose/O2 biofuel cell performance. [CNT/Lac/PEI/Lac]/GA shows that the best electron transfer rate constants (ks) achieved, in the presence as well as the absence of a mediator, are 8.6 and 1.8s. Additionally, [CNT/Lac/PEI/Lac]/GA results in high performance of Maximum Power Density with a value of 0.2mWcm. Its relative stability can be maintained up to 83.76% with relative efficiency up to 84.73%, while CNT/Lac gives the lowest performance levels. This indicates that GA induces an improvement in catalytic activity by (i) increasing the amount of immobilized laccase and (ii) strengthening interaction between laccase and PEI. Therefore, it induces excellent redox reactivity, promoting the ORR, and glucose/O biofuel cell performance. The effect of pH on catalytic activity is also measured, with pH 5 being optimal.
描述了基于漆酶的新型催化剂,以改善氧还原反应(ORR),并开发了采用这些催化剂的酶生物燃料电池(EBC)。这些新型催化剂是通过将漆酶、聚(亚乙基亚胺)和碳纳米管与交联剂戊二醛(GA)结合,然后附着选定的元素合成的。采用多种表征方法来评估在没有和有介体的情况下的催化电子转移及其对葡萄糖/O2 生物燃料电池性能的影响。[CNT/Lac/PEI/Lac]/GA 表明,在没有和有介体的情况下,实现的最佳电子转移速率常数(ks)分别为 8.6 和 1.8s。此外,[CNT/Lac/PEI/Lac]/GA 可实现 0.2mWcm 的最大功率密度的高性能,其相对稳定性可保持在 83.76%,相对效率高达 84.73%,而 CNT/Lac 的性能水平最低。这表明 GA 通过以下两种方式提高了催化活性:(i)增加了固定化漆酶的量,(ii)增强了漆酶和 PEI 之间的相互作用。因此,它诱导了出色的氧化还原反应性,促进了 ORR 和葡萄糖/O 生物燃料电池的性能。还测量了 pH 值对催化活性的影响,最佳 pH 值为 5。