ZnO纳米棒作为光致弯曲的压电能量收集器

M. Haras, M. Wlazło, W. Andrysiewicz, T. Skotnicki
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引用次数: 1

摘要

快速增长正在推动物联网(IoT)成为半导体产业的主要分支之一。令人惊讶的是,如果有经济上有吸引力和可靠的电池和电线替代品,物联网的增长将会更快。为物联网节点提供电源具有挑战性,因为它们:(i)数量(接近人口的8倍),(ii)恶劣的操作环境,(iii)尺寸(典型占地面积远小于mm2)和(iv)难以到达的位置。现代物联网节点运行所需能量非常小(小于100μJ/cycle)。电线供电既昂贵又不舒服,而使用电池需要定期更换/维护,并产生大量有毒废物。能量收集(EH)可能是克服物联网供应困难的一种解决方案,提供自给自足的节点,使物联网市场进一步增长。EH将自然或废弃的能量(振动、热损失、光等)转化为有用的能量。我们提出了一种创新的两步转换收割机,能够通过压电(PZ)效应将光转化为电。我们的方法使用了与PZ材料集成的光移动聚合物(PMP)。PMP作为光到运动的传感器,PZ将光诱导的PMP弯曲转换为电压。作为PZ材料,纳米结构的ZnO纳米棒由于其制造成本低且可用于工业规模而被使用。在专用弯曲模拟器中对ZnO的性能进行了表征,结果表明,在55秒的弯曲过程中,ZnO的能量高达80nJ。这一结果鼓励进一步优化PMP和ZnO,使压电扩展到光转换。
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ZnO nanorods as a piezoelectric energy harvester from light induced flexions
Rapid growth is promoting the Internet of Things (IoT) to become one of the main branches of the semiconductor industry. Surprisingly, the IoT growth would have been even faster if economically attractive and reliable alternatives for batteries and wires had been available. Providing power supply to the IoT nodes is challenging regarding their: (i) quantity (close to 8x the human population), (ii) harsh operation environments, (iii) size (typical footprint much smaller than mm2) and (iv) hard-to-reach locations. Modern IoT node requires very small energy (less than 100μJ/cycle) to operate. Wire supply of energy is expensive and uncomfortable while using a battery requires periodic replacements/maintenance and produces tons of toxic waste. Energy Harvesting (EH) could be a solution to overcome the IoT supply difficulties offering self-supplied nodes enabling further IoT market growth. EH converts natural or waste energies (vibrations, heat losses, light, etc.) into useful energy. We present an innovative two-step conversion harvester capable of transforming light into electricity via the PieZoelectric (PZ) effect. Our approach uses a Photo- Mobile Polymer (PMP) integrated with the PZ material. PMP serves as light-to-movement transducer and PZ converts the light-induced PMP flexions into voltage. As a PZ material, a nanostructured ZnO nanorods were used as their fabrication is cheap and ready-to-use at industrial scale. ZnO performance characterization in a dedicated flexions simulator revealed energy as high as 80nJ during 55sec bending runs. This result encourages further PMP and ZnO optimization enabling extension of piezoelectrics onto light conversion.
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