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Activating electrochemical catalytic activity of bio-palladium by hybridizing with carbon nanotube as e− Bridge

机译:通过与碳纳米管杂交作为 e-桥来激活生物钯的电化学催化活性

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摘要

Nano metal catalysts produced by bacteria has received increasing attention owing to its environmental friendly synthesis route. However, the formed metal nanoparticles are associated with poorly conductive cells and challenged to be electrochemically applied. In this study, Palladium (Pd) nanoparticles were synthesized by Shewanella oneidensis MR-1. We demonstrated the limitation of palladized cells (Pd-cells) serving as electro-catalysts can be relieved by hybridizing with the conductive carbon nanotubes (Pd-cells-CNTs hybrid). Compared to the Pd-cells, the electrochemical active surface area of Pd in Pd-cells-CNTs10 (the ratio of Pd/CNTs is 1/10 w/w) were dramatically increased by 68 times to 20.44 m2·g−1. A considerable enhancement of electrocatalytic activity was further confirmed for Pd-cells-CNTs10 as indicated by a 5-fold increase of steady state current density for nitrobenzene reduction at −0.55 V vs Ag/AgCl. These results indicate that the biogenetic palladium could has been an efficient electro-catalyst but just limited due to lacking an electron transport path (e>− Bridge). This finding may also be helpful to guide the way to electrochemically use other biogenetic metal nano-materials.
机译:由细菌产生的纳米金属催化剂由于其环保的合成途径而受到越来越多的关注。然而,所形成的金属纳米颗粒与导电性差的电池相关联,并面临电化学应用的挑战。在这项研究中,Shewanella oneidensis MR-1合成了钯(Pd)纳米颗粒。我们证明了通过与导电碳纳米管杂交(Pd-cells-CNTs hybrid)可以缓解用作电催化剂的钯化电池(Pd-cell)的局限性。与Pd电池相比,Pd电池CNTs10中Pd的电化学活性表面积(Pd / CNT的比率为1/10 w / w)急剧增加了68倍,达到20.44μm 2 ·g -1 。 Pd-cells-CNTs10的电催化活性得到了显着提高,这是相对于Ag / AgCl,在-0.55 V下硝基苯还原的稳态电流密度增加了5倍。这些结果表明,生物生成的钯本来可以是一种有效的电催化剂,但是由于缺乏电子传输路径(e >- 桥)而受到限制。这一发现也可能有助于指导电化学方法使用其他生物遗传金属纳米材料。

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