Electrochemical preparation and features of newly cross-stacking multi-layered reduced graphene oxide (rGO) and polyaniline (PANI) modified carbon-based electrode

IF 3.6 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Qi-Yu Zhang , Yue-Jia Yang , Mei-Yi Tang , Zhuo-Chao Liu , Ai-Hong Chen , Li-Ming Yang , Dan Cui
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Abstract

Carbon-based electrode as an economically benign choice is widely used in electrochemical or bio-electrochemical systems. However, its poor electrical conductivity that leading high overpotential and energy loss, especially in large scale facilities, remains a bottleneck for its application. Herein, a unique cross-stacking multi-layered reduced graphene oxide (rGO) and polyaniline (PANI) modified carbon brush is fabricated via one-step electro-depositing. In particular, the top-most layer of the modified electrode is orientated controlled to be rGO or PANI layer by adjusting the initial CV scanning in the positive or negative direction. As was indicated by cyclic voltammetry, the improved electrochemical activity is achieved by coupling the advantages of the highly conductive network offered by graphene with desirable stability provided by the well-dispersed deposition of nanoscale PANI particles. In comparison, the modified electrode with rGO on the top-most layer (LrGO) showed higher degree of sp2-hybridized -C-C- ordered structure in Raman profile, lower O/C ratio in XPS analysis, higher Zeta potential (−2.05 mV) and more hydrophilic than unmodified one. Moreover, benefiting from the unique cross-stacking multi-layered matrix of rGO and PANI, the best electrochemical performance was achieved on the electrode LrGO with high exerted electrochemical active surface area (ECSA) of 0.85 mF cm−2, and the charge transfer resistance as low as 0.32 Ω. The findings of this study provide a guidance for the modification and application of carbon-based electrode using rGO and PANI, which potentially enables the scaling-up of carbon-based electrode in various (bio-) electrochemical systems with high electrochemical performance.

Abstract Image

新型交叉堆叠多层还原氧化石墨烯 (rGO) 和聚苯胺 (PANI) 改性碳基电极的电化学制备及其特性
碳基电极作为一种经济环保的选择,被广泛应用于电化学或生物电化学系统。然而,碳基电极的导电性较差,导致过电位和能量损耗较高,尤其是在大型设备中,这仍然是其应用的瓶颈。本文通过一步电沉积法制造了一种独特的交叉堆叠多层还原氧化石墨烯(rGO)和聚苯胺(PANI)改性碳刷。特别是,通过调整初始 CV 扫描的正负方向,可将改性电极的最顶层控制为 rGO 或 PANI 层。循环伏安法显示,石墨烯的高导电性网络优势与纳米级 PANI 颗粒的良好分散沉积所提供的理想稳定性相结合,提高了电化学活性。相比之下,最顶层为 rGO 的改性电极(LrGO)在拉曼图谱中显示出更高程度的 sp2 杂化 -C-C- 有序结构,在 XPS 分析中显示出更低的 O/C 比,Zeta 电位更高(-2.05 mV),亲水性也比未改性电极更强。此外,得益于 rGO 和 PANI 独特的交叉堆叠多层基质,电极 LrGO 实现了最佳的电化学性能,其施加的电化学活性表面积高达 0.85 mF cm-2,电荷转移电阻低至 0.32 Ω。
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来源期刊
Current Research in Biotechnology
Current Research in Biotechnology Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
6.70
自引率
3.60%
发文量
50
审稿时长
38 days
期刊介绍: Current Research in Biotechnology (CRBIOT) is a new primary research, gold open access journal from Elsevier. CRBIOT publishes original papers, reviews, and short communications (including viewpoints and perspectives) resulting from research in biotechnology and biotech-associated disciplines. Current Research in Biotechnology is a peer-reviewed gold open access (OA) journal and upon acceptance all articles are permanently and freely available. It is a companion to the highly regarded review journal Current Opinion in Biotechnology (2018 CiteScore 8.450) and is part of the Current Opinion and Research (CO+RE) suite of journals. All CO+RE journals leverage the Current Opinion legacy-of editorial excellence, high-impact, and global reach-to ensure they are a widely read resource that is integral to scientists' workflow.
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