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Sustainable electricity production from seawater using Spirulina platensis microbial fuel cell catalyzed by silver nanoparticles-activated carbon composite prepared by a new modified photolysis method

机译:通过通过新改性光解法制备的银纳米粒子 - 活性炭复合物催化的螺旋藻微生物燃料电池从海水中的可持续电力生产

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摘要

A new and innovative microbial fuel cell of high energy conversion efficiency (with no heat emission or corrosion problems) was formulated using nanoparticles of dry biomass Spirulina platensis microalgae. High cell potential up to 1.0 V was obtained from this microbial fuel cell. The Spindina platensis nanoparticles have been prepared using the top-down approach, then were sonicated to facilitate their digestion as a feedstock for the microorganisms in the seawater. The microorganisms in the polluted seawater at the deaerated anode chamber oxidized the organic matter producing electrons that transfer to the anode surface inside the microbial fuel cell via the microbial nanowires. These electrons (electric current) passed in the external circuit from the anode surface to the cathode surface. The microstructure of the bacterial biofilm on the anode surface was confirmed using the scanning electron microscope. The promising catalyst silver nanoparticles-activated carbon composite was prepared by a new modified photolysis method. The transmitting electron microscope micrograph of silver nanoparticles showed an average particle size of about 10 run homogeneously loaded on the activated carbon matrix. The powder X-ray diffraction pattern of silver nanoparticles-activated carbon composite confirmed the formation of zero-valent metallic silver nanoparticles via the photoreduction of silver nitrate using low cost modified photolysis method. The composite efficiently catalyzed the slow oxygen reduction reaction at the cathode surface. The open cell potential of microbial fuel cell was 500 mV and 1000 mV and the corresponding power density up to 1.0 and 2.5 W. m~(-2) in the absence and the presence of silver nanoparticles-activated carbon composite, respectively. Both open-cell potential and the closed-cell potential were maximized in the presence of silver nanoparticles-activated carbon composite and remained unchanged for nearly one month of the cell operation.
机译:使用纳米粒子的干生物量螺旋藻微藻(没有发热或腐蚀问题)的新的和创新的微生物燃料电池(没有热排放或腐蚀问题)。从该微生物燃料电池中获得高达1.0V的高电池电位。使用自上而下的方法制备了Spindina Platersis纳米粒子,然后超声处理以促进它们作为海水中微生物的原料的消化。脱气的阳极室的污染海水中的微生物将产生的电子经由微生物纳米线氧化产生的电子,其产生电子电池内的微生物燃料电池内的阳极表面。这些电子(电流)从阳极表面传递到外部电路到阴极表面。使用扫描电子显微镜确认阳极表面上的细菌生物膜的微观结构。通过新的修饰的光解法制备了前景的催化剂银纳米颗粒活性炭复合物。银纳米颗粒的传输电子显微镜显微照片显示平均粒径为约10的均匀装载在活性炭基质上。粉末X射线衍射图案的银纳米粒子活性炭复合物通过低成本改性光解法通过光致氧化硝酸银光射到,确认了零价金属银纳米粒子的形成。复合材料有效地催化阴极表面上的慢氧还原反应。微生物燃料电池的开放电池电位分别在不存在和存在银纳米粒子活性炭复合材料的情况下,微生物燃料电池的开放电池和1000mV高达1.0和2.5W W.2)的相应功率密度。在银纳米粒子活性炭复合物存在下,开放电池电位和闭孔电位都最大化,并且在近一个月的细胞操作中保持不变。

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