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克服酶生物燃料电池阴极的瓶颈:粗真菌培养液可以帮助延长寿命和降低成本。

Overcoming bottlenecks of enzymatic biofuel cell cathodes: crude fungal culture supernatant can help to extend lifetime and reduce cost.

机构信息

Laboratory for MEMS Applications, IMTEK-Department of Microsystems Engineering, University of Freiburg, 79110 Freiburg, Germany.

出版信息

ChemSusChem. 2013 Jul;6(7):1209-15. doi: 10.1002/cssc.201300205. Epub 2013 Jun 25.

Abstract

Enzymatic biofuel cells (BFCs) show great potential for the direct conversion of biochemically stored energy from renewable biomass resources into electricity. However, enzyme purification is time-consuming and expensive. Furthermore, the long-term use of enzymatic BFCs is hindered by enzyme degradation, which limits their lifetime to only a few weeks. We show, for the first time, that crude culture supernatant from enzyme-secreting microorganisms (Trametes versicolor) can be used without further treatment to supply the enzyme laccase to the cathode of a mediatorless BFC. Polarization curves show that there is no significant difference in the cathode performance when using crude supernatant that contains laccase compared to purified laccase in culture medium or buffer solution. Furthermore, we demonstrate that the oxygen reduction activity of this enzymatic cathode can be sustained over a period of at least 120 days by periodic resupply of crude culture supernatant. This is more than five times longer than control cathodes without the resupply of culture supernatant. During the operation period of 120 days, no progressive loss of potential is observed, which suggests that significantly longer lifetimes than shown in this work may be possible. Our results demonstrate the possibility to establish simple, cost efficient, and mediatorless enzymatic BFC cathodes that do not require expensive enzyme purification procedures. Furthermore, they show the feasibility of an enzymatic BFC with an extended lifetime, in which self-replicating microorganisms provide the electrode with catalytically active enzymes in a continuous or periodic manner.

摘要

酶生物燃料电池 (BFC) 具有将可再生生物质资源中储存的生物化学能直接转化为电能的巨大潜力。然而,酶的纯化既耗时又昂贵。此外,酶 BFC 的长期使用受到酶降解的限制,这将其使用寿命限制在仅几周内。我们首次表明,无需进一步处理,酶分泌微生物(彩绒革盖菌)的粗培养上清液即可用于为无介体 BFC 的阴极提供酶漆酶。极化曲线表明,在使用含有漆酶的粗上清液与在培养基或缓冲液中使用纯化漆酶相比,阴极性能没有明显差异。此外,我们证明,通过定期补充粗培养上清液,这种酶阴极的氧还原活性可以持续至少 120 天。这比没有补充培养上清液的对照阴极长五倍以上。在 120 天的运行期间,没有观察到电位的渐进损失,这表明可能具有比本工作中所示更长的寿命。我们的结果表明,可以建立简单、经济高效且无需昂贵酶纯化程序的无介体酶 BFC 阴极。此外,它们还展示了具有延长寿命的酶 BFC 的可行性,其中自复制微生物以连续或周期性的方式为电极提供具有催化活性的酶。

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