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首页> 外文期刊>ACS Omega >Fabrication of a SnO2-Based Hydroelectric Cell for Green Energy Production
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Fabrication of a SnO2-Based Hydroelectric Cell for Green Energy Production

机译:用于绿色能源生产的SNO2基水电池的制造

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The generation of electricity by dissociating water into H_(3)O~(+) and OH~(–) ions through a hydroelectric cell (HEC) without liberating any toxic waste has achieved a groundbreaking feat. Nanoporous magnesium-doped SnO_(2) and cobalt-doped SnO_(2) materials have been prepared via a novel sol–gel method. The X-ray diffraction patterns of Mg-doped SnO_(2) and Co-doped SnO_(2) completely match with those of pure SnO_(2), which confirms the interstitial substitution of Mg and Co in the pristine SnO_(2). The results shown by Brunauer–Emmett–Teller theory curves illustrate the surface area of Mg-doped SnO_(2) and Co-doped SnO_(2) to be 46.22 and 46.81 m~(2)/g, respectively, with their pore radii being ~3 nm. The synthesized nanoparticles were pressed into square pellets of area 4.08 cm~(2). A zinc electrode was pasted on one side of each pellet and silver was painted on the other side to develop the HECs. The fabricated HECs of Mg-doped SnO_(2) and Co-doped SnO_(2) with 4.08 cm~(2) area deliver short-circuit current, open-circuit voltage, and off-load output power of 41.69 mA, 0.787 V, and 32.81 mW and 77.52 mA, 0.454 V, and 35.19 mW, respectively. Cyclic voltammetry of both materials exhibited cathodic and anodic peaks in relation to the redox reactions taking place at Zn and silver electrodes. Nyquist curves of both HECs in the wet state confirm the ionic diffusion of split H_(3)O~(+) and OH~(–) ions as compared to the dry state. An off-load output power of 35.19 mW delivered by the HEC of Co-doped SnO_(2) with 4.08 cm~(2) area is quite promising and has great potential to replace other green energy sources.
机译:通过将水分解成H_(3)O〜(+)和OH〜( - )离子通过水电池(HEC)而不解放任何有毒废物,已经取得了突破性的壮举。纳米孔镁掺杂的SnO_(2)和掺杂钴的SnO_(2)材料通过新型溶胶 - 凝胶法制备。 Mg掺杂的SnO_(2)和共掺杂的SnO_(2)的X射线衍射图与纯SnO_(2)完全匹配,其证实MG和CO在原始SnO_(2)中的间质取代。 Brunauer-Emmett-Teller理论曲线所示的结果示出了Mg掺杂的SnO_(2)和共掺杂的SnO_(2)的表面积,分别为46.22和46.81m〜(2)/ g,其孔径半径是〜3纳米。将合成的纳米颗粒压入面积4.08cm〜(2)的方形粒料中。将锌电极粘贴在每个颗粒的一侧上,并在另一侧涂上银以进行HEC。 Mg掺杂的SnO_(2)和共掺杂的SnO_(2)的制造的HEC,具有4.08cm〜(2)区域,提供短路电流,开路电压和卸载输出功率为41.69 mA,0.787 V. 32.81 MW和77.52 mA,0.454 V和35.19兆瓦。两种材料的循环伏安法表现了在Zn和银电极的氧化还原反应相关的阴极和阳极峰。湿态两种HEC的奈奎斯特曲线确认了与干燥状态相比的分裂H_(3)O〜(+)和OH〜( - )离子的离子扩散。由4.08厘米〜(2)区域的共掺杂SnO_(2)的HEC交付的卸载输出功率为35.19 MW,具有4.08厘米〜(2)区域非常有前途,并且具有更换其他绿色能源的潜力。

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