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添加緩衝溶液對氫原子在活性碳的吸脫附於水相非對稱超級電容器之應用
Thesis

添加緩衝溶液對氫原子在活性碳的吸脫附於水相非對稱超級電容器之應用

簡秀娟
Masters, 國立清華大學, 化學工程學系
2015

Abstract

氫原子吸脫附 活性碳 緩衝溶液 區域性pH值 水相非對稱電容器 hydrogen adsorption/desorption activated carbon buffer agents local pH change aqueous asymmetric supercapacitors
In this work, the effects of adding buffer agents into aqueous electrolytes on the hydrogen adsorption/desorption behaviour at/within activated carbon are systematically investigated for the negative electrode of asymmetric supercapacitors. Due to the poor electrochemical reversibility of hydrogen adsorption/desorption at/within activated carbon, the hydrogen responses at/within activated carbon are not suitable for pseudo-capacitive energy storage of high-performance asymmetric supercapacitor. The electrochemical adsorption of H atoms consumes protons and causes the local pH change at the activated carbon/electrolyte interface, leading to the negative shift in the H adsorption potential when weakly acidic, neutral, and weakly basic electrolytes without buffer agents are employed. The addition of buffer agents into electrolytes significantly improves the rate of proton supply and promotes the rate of hydrogen adsorption at/within AC. Interestingly, the onset potential of significant H adsorption obtained from the buffered electrolytes generally follows the Nernstian dependence, suggesting the Nerstian dependence of H+/Hads on AC at all pH values. In order to obtain the energy storage devices with high coulombic and energy efficiencies, the onset potential of significant H adsorption obtained from the electrolyte containing buffer agents is a reliable lower potential limit of the AC-coated negative electrode for aqueous asymmetric supercapacitors. The hydrogen adsorption/desorption behaviour at/within activated carbon are systematically investigated for the RuO2 / activated carbon asymmetric supercapacitors with cyclic voltammetry and chronopotentiometry methods including floating test. Due to the poor electrochemical reversibility of hydrogen adsorption/desorption at/within activated carbon when the low limit potential of activated carbon is lower than -0.8V, the reversibility of asymmetric supercapacitors decreases dramatically.

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