Alumina supported copper oxide nanoparticles (CuO/Al2O3) as high-performance electrocatalysts for hydrazine oxidation reaction

电催化剂 纳米材料基催化剂 材料科学 氧化物 纳米颗粒 催化作用 化学工程 电化学 联氨(抗抑郁剂) 循环伏安法 氧化铜 打赌理论 无机化学 纳米技术 化学 电极 冶金 有机化学 物理化学 工程类 色谱法
作者
Safia Khan,Syed Sakhawat Shah,Naveed Kausar Janjua,Ayşe Bayrakçeken Yurtcan,M. Tariq Nazir,Khadijah Mohammedsaleh Katubi,Norah Salem Alsaiari
出处
期刊:Chemosphere [Elsevier BV]
卷期号:315: 137659-137659 被引量:27
标识
DOI:10.1016/j.chemosphere.2022.137659
摘要

Direct hydrazine liquid fuel cell (DHFC) is perceived as effectual energy generating mean owing to high conversion efficiency and energy density. However, the development of well-designed, cost effective and high performance electrocatalysts is the paramount to establish DHFCs as efficient energy generating technology. Herein, gamma alumina supported copper oxide nanocatalysts (CuO/Al2O3) are synthesized via impregnation method and investigated for their electrocatalytic potential towards hydrazine oxidation reaction. CuO with different weight percentages i.e., 4%, 8%, 12%, 16% and 20% are impregnated on gamma alumina support. X-ray diffraction analysis revealed the cubic crystal structure and nanosized particles of the prepared metal oxides. Transmission electron microscopy also referred to the cubic morphology and nanoparticle formation. Electrochemical oxidation potential of the CuO/Al2O3 nanoparticles is explored via cyclic voltammetry as the analytical tool. Optimization of conditions and electrocatalytic studies shown that 16% CuO/Al2O3 presented the best electronic properties towards N2H2 oxidation reaction. BET analysis ascertained the high surface area (131.2546 m2 g1) and large pore diameter (0.279605 cm³ g-1) for 16% CuO/Al2O3. Nanoparticle formation, high porosity and enlarged surface area of the proposed catalysts resulted in significant oxidation current output (600 μA), high current density (8.2 mA cm-2) and low charge transfer resistance (3.7 kΩ). Electrooxidation of hydrazine on such an affordable and novel electrocatalyst opens a gateway to further explore the metal oxide impregnated alumina materials for different electrochemical applications.
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