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首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >Sulfonated graphene oxide and titanium dioxide coated with nanostructured polyaniline nanocomposites as an efficient cathode catalyst in microbial fuel cells
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Sulfonated graphene oxide and titanium dioxide coated with nanostructured polyaniline nanocomposites as an efficient cathode catalyst in microbial fuel cells

机译:含有纳米结构聚苯胺纳米复合材料的磺化石墨烯和二氧化钛作为微生物燃料电池中的有效阴极催化剂

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摘要

In this study, sulfonated graphene oxide (SGO) was synthesized as potential conducting matrix to improve the properties of catalyst for single chamber microbial fuel cells (SC-MFCs). Here, TiO2 and Polyaniline (PAni) nanoparticles were anchored over SGO and the resulting SGO-TiO2-PAni nanocomposites were used as a potential cathode catalyst in MFCs. We have also examined the performance of SGO-TiO2-PAni compared to GO-TiO2-PAni and TiO2-PAni catalyst. The structural and morphological analyses were examined using a variety of characterization techniques. TiO2 nanoparticles bridged PAni and SGO through hydrogen bonding/electrostatic interaction and improved the thermal stability of SGO-TiO2-PAni catalyst. The electrochemical characterizations of these nanocatalysts suggest that the SGO-TiO2-PAni showed higher reduction current value (-0.46 mA), enhanced stability, and lower internal resistance (46.2 Omega) in comparison to GO-TiO2-PAni and TiO2-PAni towards oxygen reduction reactions (ORR). Consequently, MFC using SGO-TiO2-PAni demonstrated a maximum power density of 904.18 mWm(-2) than that of GO-TiO2-PAni (734.12 mWm(-2)), TiO2-PAni (561.5 mWm(-2)) and Pt/C (483.5 mWm(-2)). The enhanced catalytic activity of SGO-TiO(2-)PAni catalyst was ascribed to the high electronic conductivity and long-term permanence of the nanocomposite. These superior electrochemical results suggested that the SGO-TiO2-PAni catalyst could be applied as a potential alternative to the commercial Pt/C cathode catalyst for the application of MFCs.
机译:在该研究中,合成磺化的石墨烯氧化物(SGO)作为潜在的导电基质,以改善单室微生物燃料电池(SC-MFC)的催化剂的性质。这里,将TiO 2和聚苯胺(PANI)纳米颗粒固定在SGO上,并将所得的Sg-TiO2-PANI纳米复合材料用作MFC中的潜在阴极催化剂。与Go-TiO2-PANI和TiO2-PANI催化剂相比,我们还研究了Sgo-TiO2-Pani的表现。使用各种特征技术检查结构和形态学分析。 TiO2纳米粒子通过氢键/静电相互作用桥接PANI和SGO,并改善了SGO-TiO2-PANI催化剂的热稳定性。这些纳米催化剂的电化学表征表明,与Go-TiO2-PANI和TiO2-PANI朝向氧气相比,Sgo-TiO2-PANI显示出更高的降低电流值(-0.46mA),增强的稳定性和较低的内阻(46.2ω)还原反应(ORR)。因此,使用Sgo-TiO2-PANI的MFC显示比GO-TiO2-PANI(734.12mWm(-2)),TiO2-PANI(561.5 mWM(-2))和Pt / c(483.5 mwm(-2))。 Sgo-TiO(2-)PANI催化剂的增强催化活性归因于纳米复合材料的高电子电导率和长期持久性。这些卓越的电化学结果表明Sgo-TiO2-PANI催化剂可以作为应用MFC应用的商业Pt / C阴极催化剂的潜在替代物。

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