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Biochar from Brewers’ Spent Grain: A Green and Low-Cost Smart Material to Modify Screen-Printed Electrodes

机译:啤酒厂用过的谷物中的生物碳:一种绿色且低成本的智能材料可修改丝网印刷电极

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摘要

In the present study, biochar from brewers’ spent grain was used, for the first time, to develop screen-printed electrodes. After having investigated the dispersion behaviour of biochar in different organic solvents, a biochar-based screen-printed electrode was prepared with the drop-casting technique. In order to understand the electrochemical potentiality and performances of the biochar/sensor tool, different electroactive species, i.e., ferricyanide, benzoquinone, epinephrine, ascorbic, and uric acids, were used. The results were compared with those of the same electrodes that were modified with commercial graphene, confirming that the proposed electrode showed improved electrochemical behaviour in terms of resolution, peak-to-peak separation, current intensity, and resistance to charge transfer. Furthermore, a tyrosinase biosensor was developed by direct immobilisation of this enzyme on the biochar/screen printed electrode, as an example of the potential of biochar for disposable biosensor development. The efficiently occurred immobilisation of the biochar on the screen printed electrode’s (SPE’s) surface was demonstrated by the observation of the working electrode with a scanning electron microscope. The detection was performed by measuring the current due to the reduction of the corresponding quinone at low potential, equal to −0.310 V for epinephrine. The experimental conditions for the tyrosinase immobilization and the analytical parameters, such as applied potential and pH of buffer, were studied and optimized. Under these conditions, the electrochemical biosensors were characterized. A linear working range of epinephrine was obtained from 0.05 up to 0.5 mM. The detection limit was 2 × 10 mM for the biosensor.
机译:在本研究中,酿酒商用过的谷物中的生物炭首次用于开发丝网印刷电极。在研究了生物炭在不同有机溶剂中的分散行为后,采用滴铸技术制备了基于生物炭的丝网印刷电极。为了了解生物炭/传感器工具的电化学潜力和性能,使用了不同的电活性物质,即铁氰化物,苯醌,肾上腺素,抗坏血酸和尿酸。将结果与用市售石墨烯修饰的相同电极的结果进行了比较,证实了所提出的电极在分辨率,峰峰分离,电流强度和电荷转移阻力方面表现出改善的电化学行为。此外,通过将该酶直接固定在生物炭/丝网印刷电极上,开发了酪氨酸酶生物传感器,作为生物炭用于一次性生物传感器开发的潜力的实例。通过使用扫描电子显微镜观察工作电极,证明了生物炭在丝网印刷电极(SPE)表面上的有效固定。通过在低电势下(相当于肾上腺素的-0.310 V)测量由于相应的醌还原而产生的电流来进行检测。研究和优化了酪氨酸酶固定化的实验条件和分析参数,如施加电位和缓冲液的pH。在这些条件下,表征了电化学生物传感器。肾上腺素的线性工作范围为0.05至0.5 mM。生物传感器的检出限为2×10 mM。

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