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Dispersed Ag2O/Ag on CNT-Graphene Composite: An Implication for Magnificent Photoreduction and Energy Storage Applications

机译:碳纳米管-石墨烯复合材料上的分散Ag2O / Ag:对光还原和储能的重大应用

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摘要

A simple hydrothermal route assisted by a triblock copolymer was used to synthesize Ag2O/Ag nanoparticles on a robotic support consists of functionalized MWCNTs and graphene composite (Ag2O/Ag/CNT-graphene). The composites together with the individual analog of Ag/CNT and Ag/graphene were characterized by means of XRD, TEM-SAED, N2 sorptiometry, Raman, FTIR, UV-Vis, and photoluminescence spectroscopy. These nanomaterials were then tested for the catalytic reduction of 4-nitrophenol (4-NP) to the technologically beneficial 4-aminophenol (4-AP). The Ag2O@Ag@CNT-graphene composite calcined at 400°C has shown fascinating reduction performances for 4-NP either in the dark (k = 0.014 s−1) or under visible light illumination (k = 0.039 s−1) in the presence of 5 mM NaBH4 compared to Ag/CNT (0.0112 s−1) and Ag/graphene (0.010 s−1) catalysts. This was chiefly because Ag2O@Ag@CNT-graphene comprises the highest pore volume (0.49 cm3/g) and involves three types of pores in the margin from 1.8 to 4.0 nm in front of only one modal type of pores for the rest of the catalysts and thus maximizes the adsorptive capacity of the reactants (4-NP and NaBH4). Moreover, the former composite exhibits the highest concentration of the Ag2O component as established by numerous techniques in addition to the cyclic voltammetry, proposing it's facile reaction with 4-NP along with the simultaneous transfer of surface hydrogen and electrons from NaBH4 ions to produce 4-AP. The promotion of the p-n junction evaluated using the Mott-schottky equation on Ag2O@Ag@CNT-graphene assisted by charges separation and surface plasmon resonance bands of Ag and Ag2O are found to be advantageous for 4-NP reduction. The latter composite delivers a specific capacitance of 355 F g−1 at 1.0 A g−1 exceeding those of Ag/CNT (230 F g−1) and Ag/graphene (185 F g−1). The EIS study establishes the high electronic conductivity of the metallic Ag and Ag2O moieties, low internal resistance of CNT-graphene as well as the marked ionic transfer facilitated by the composite porous nature.
机译:使用由三嵌段共聚物辅助的简单水热路线在由功能化的MWCNT和石墨烯复合物(Ag2O / Ag / CNT-石墨烯)组成的机器人载体上合成Ag2O / Ag纳米颗粒。通过XRD,TEM-SAED,N2吸收法,拉曼光谱,FTIR,UV-Vis和光致发光光谱法对复合材料以及Ag / CNT和Ag /石墨烯的类似物进行了表征。然后测试这些纳米材料将4-硝基苯酚(4-NP)催化还原为技术上有益的4-氨基苯酚(4-AP)。在黑暗中(k = 0.014 s -1 )或在可见光下(k =与Ag / CNT(0.0112 s -1 )和Ag /石墨烯(0.010 s -1 / sup>)催化剂。这主要是因为Ag2O @ Ag @ CNT-石墨烯具有最大的孔体积(0.49 cm 3 / g),并且在1.8至4.0 nm的边缘中仅在一种模态之前涉及三种类型的孔其余催化剂的孔类型,从而使反应物(4-NP和NaBH4)的吸附能力最大化。此外,前者的复合材料显示出最高浓度的Ag2O成分,这是通过循环伏安法通过多种技术确定的,这表明它与4-NP的反应很容易,同时表面氢和电子从NaBH4离子中同时转移生成4-美联社发现利用Mott-schottky方程评估的p-n结在Ag2O @ Ag @ CNT-石墨烯上的电荷分离以及Ag和Ag2O的表面等离振子共振带的辅助促进了4-NP的还原。后者的复合材料在1.0 A g -1 时的比电容为355 F g -1 ,超过了Ag / CNT(230 F g -1 )和Ag /石墨烯(185 F g -1 )。 EIS研究建立了金属Ag和Ag2O部分的高电子电导率,CNT-石墨烯的低内电阻以及复合多孔性促进的明显离子转移。

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