首页> 外文期刊>Journal of Applied Polymer Science >Immobilization of multicopper oxidase from Pyrobaculum aerophilum onto an electrospun-aligned single-walled carbon nanotube surface via a carbon-nanotube-binding peptide for biocathode
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Immobilization of multicopper oxidase from Pyrobaculum aerophilum onto an electrospun-aligned single-walled carbon nanotube surface via a carbon-nanotube-binding peptide for biocathode

机译:通过碳 - 纳米管粘合肽从丙杆菌氧化到电扫除的单壁碳纳米管表面上的多球氧化酶固定到碳纳米管粘合肽中的生物探测肽

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摘要

Biofuel cells (BFCs) that produce electrical energy from organic resources through enzymatic reactions have been attracting significant attention. Owing to the high electrical conductivity of carbon nanotubes (CNTs), their modification on the electrode surface of a BFC is expected to increase the current, and their high specific surface area may be useful in increasing the power output. Previously, we constructed a biocathode by immobilizing multicopper oxidase from Pyrobaculum aerophilum (McoP) with a carbon nanotube binding peptide (CBP) sequence on the CNTs. This resulted in higher current densities than when using enzymes without CBP sequences. However, owing to the randomly stacked CNTs on the surface of the electrodes, their conductive properties were impaired and performance as biocathodes was poor. Herein, we constructed a biocathode in which single-walled CNTs (SWCNTs) were oriented one-dimensionally and McoP is immobilized on the surface of an SWNCT via CBP. The current density was successfully increased by two-fold by orienting the CNTs and orienting and immobilizing McoP on their surfaces. This technology provides insights into the development of biodevices with controlled orientation of both the SWCNTs and enzymes immobilized on their surfaces.
机译:通过酶促反应从有机资源中产生电能的生物燃料电池(BFC)一直备受关注。由于碳纳米管(CNT)的高导电性,其在BFC电极表面的修饰有望增加电流,并且其高比表面积可能有助于提高功率输出。之前,我们通过在碳纳米管上用碳纳米管结合肽(CBP)序列固定嗜气焦杆菌(Pyrobculum aerophilum,McoP)中的多铜氧化酶,构建了一种生物阴极。这导致了比使用不含CBP序列的酶时更高的电流密度。然而,由于碳纳米管随机堆积在电极表面,其导电性能受损,作为生物阴极的性能较差。在此,我们构建了一个生物阴极,其中单壁碳纳米管(SWCNT)被一维定向,McoP通过CBP固定在SWNCT表面。通过定向碳纳米管并在其表面定向和固定McoP,电流密度成功地增加了两倍。这项技术为生物器件的发展提供了洞察,这些器件可以控制单壁碳纳米管和固定在其表面的酶的方向。

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