Department of Organic and Nano Engineering, Hanyang University , Seoul 133-791, South Korea.
Department of Fuel Cells and Hydrogen Technology, Hanyang University , Seoul 133-791, South Korea.
ACS Appl Mater Interfaces. 2016 Mar 23;8(11):7471-82. doi: 10.1021/acsami.5b09319. Epub 2016 Mar 8.
Highly conductive mesoporous carbon structures based on multiwalled carbon nanotubes (MWCNTs) and activated charcoal (AC) were synthesized by an enzymatic dispersion method. The synthesized carbon configuration consists of synchronized structures of highly conductive MWCNT and porous activated charcoal morphology. The proposed carbon structure was used as counter electrode (CE) for quasi-solid-state dye-sensitized solar cells (DSSCs). The AC-doped MWCNT hybrid showed much enhanced electrocatalytic activity (ECA) toward polymer gel electrolyte and revealed a charge transfer resistance (RCT) of 0.60 Ω, demonstrating a fast electron transport mechanism. The exceptional electrocatalytic activity and high conductivity of the AC-doped MWCNT hybrid CE are associated with its synchronized features of high surface area and electronic conductivity, which produces higher interfacial reaction with the quasi-solid electrolyte. Morphological studies confirm the forms of amorphous and conductive 3D carbon structure with high density of CNT colloid. The excessive oxygen surface groups and defect-rich structure can entrap an excessive volume of quasi-solid electrolyte and locate multiple sites for iodide/triiodide catalytic reaction. The resultant D719 DSSC composed of this novel hybrid CE fabricated with polymer gel electrolyte demonstrated an efficiency of 10.05% with a high fill factor (83%), outperforming the Pt electrode. Such facile synthesis of CE together with low cost and sustainability supports the proposed DSSCs' structure to stand out as an efficient next-generation photovoltaic device.
基于多壁碳纳米管 (MWCNT) 和活性炭 (AC) 的高导电中孔碳结构是通过酶分散法合成的。合成的碳结构由高导电性 MWCNT 和多孔活性炭形态的同步结构组成。所提出的碳结构被用作准固态染料敏化太阳能电池 (DSSC) 的对电极 (CE)。AC 掺杂的 MWCNT 杂化显示出对聚合物凝胶电解质更高的电催化活性 (ECA),并显示出 0.60 Ω 的电荷转移电阻 (RCT),表明具有快速的电子传输机制。AC 掺杂的 MWCNT 杂化 CE 的优异电催化活性和高导电性与其高表面积和电子导电性的同步特征有关,这与准固态电解质产生更高的界面反应。形态研究证实了具有高 CNT 胶体密度的无定形和导电 3D 碳结构的形式。过量的氧表面基团和富含缺陷的结构可以捕获过量的准固态电解质体积,并为碘/三碘化物催化反应定位多个位点。由这种新型杂化 CE 与聚合物凝胶电解质制成的 D719 DSSC 的效率为 10.05%,填充因子 (83%) 较高,优于 Pt 电极。这种 CE 的简便合成以及低成本和可持续性支持了所提出的 DSSC 结构作为高效下一代光伏器件的突出地位。