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A highly sensitive double-layer structured nanodevice for moisture induced power generation

机译:用于水分诱导发电的高度敏感的双层结构纳米型

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摘要

With the increasing global energy demand, traditional energy sources are gradually failing to meet society's needs while also having a potential of being harmful to the environment. As such, energy generating technologies capable of converting ubiquitous environmental energy into usable forms, such as electricity, have received increasing attention. In this research, a power generating device composed of a graphene (G) and titanium dioxide nanowire (TiO2 NWs) double-layer structure is prepared by an electrophoretic deposition method. Since both materials have special nanochannel structures and non-zero zeta potential, they can convert environmental energy into electricity through the diffusion, ionization, and natural evaporation of water. Furthermore, the efficiency of this novel sensor is much higher than their respective single-layer devices. By application of only 6 mu l of water, the open circuit voltage (U-OC) generated on the G-TiO2 sensor is as high as 1.067 +/- (0.008) V. In comparison, TiO2 NWs single layer can only generate a U-OC around 500 mV, and graphene itself can only produce a U-OC no more than 250 mV under the same condition. Additionally, the effect of different deposition times of graphene on the surface morphology and thickness of graphene film is explored, and the effects of these changes in microstructure on performance is discussed in depth. Aside from power generation, the high sensitivity of the device to different volumes of water brings its use in the detection of trace amounts of water, and its high efficiency of energy conversion suggests a potential application as a power supply. This research not only provides a satisfactory candidate for inexpensive and efficient evaporative power generation, but also builds a foundation for developing new, intelligent, and self-powered electronic technologies.
机译:随着全球能源需求的增加,传统能源逐渐失败,以满足社会的需求,同时也有可能对环境有害。因此,能够将普遍存在的环境能量转化为可用形式(例如电)的能量产生技术接受了不断的关注。在该研究中,通过电泳沉积方法制备由石墨烯(G)和二氧化钛纳米线(TiO 2 NWS)双层结构组成的发电装置。由于两种材料具有特殊的纳米通道结构和非零ζ电位,因此它们可以通过扩散,电离和水的自然蒸发将环境能量转化为电力。此外,这种新颖传感器的效率远高于各自的单层器件。通过仅应用6μl水,G-TiO2传感器上产生的开路电压(U-OC)高达1.067 +/-(0.008)V.相比之下,TiO2 NWS单层只能生成一个U-OC大约500 mV,并且石墨烯本身只能在相同条件下产生U-OC不超过250 mV。另外,探讨了石墨烯的不同沉积次数对石墨烯膜的表面形态和厚度的影响,并且深入讨论了这些微观结构的微观结构变化的影响。除了发电之外,该装置对不同体积的水的高灵敏度带来了在痕量水中的检测中,其高能量转换效率表明潜在的应用作为电源。这项研究不仅为廉价和高效的蒸发发电提供了令人满意的候选者,而且还为开发新的,智能和自我供电的电子技术建立了基础。

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