首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Highly Efficient Thermo- and Sunlight-Driven Energy Storage for Thermo-Electric Energy Harvesting Using Sustainable Nanocellulose-Derived Carbon Aerogels Embedded Phase Change Materials
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Highly Efficient Thermo- and Sunlight-Driven Energy Storage for Thermo-Electric Energy Harvesting Using Sustainable Nanocellulose-Derived Carbon Aerogels Embedded Phase Change Materials

机译:使用可持续纳米纤维素衍生的碳气凝胶嵌入相变材料的高效热能和阳光驱动的储能,用于热电能收获

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摘要

It is a challenge to harvest thermoelectric energy in an environment in which temperature is spatially uniform since the temperature gradient is necessary for the Seebeck effect. A sustainable and highly efficient thermo- and sunlight-driven energy conversion and storage material is fabricated by the combination of organic phase change materials (OPCM) with high performance carbon nanofiber aerogels (CNFAs) and proposed as a heat supply to develop an energy harvesting system. The energy harvesting system consists of two different PCM/CNFA composites (stearic acid/CNFA composites (PCM-SA) and 1-tetradecanol/CNFA composites (PCM-1-TD)) and an N and P type semiconductor. It can collect discarded thermal energy and solar energy and convert them into electric energy in an environment with spatially uniform temperature. The high-performance CNFAs are derived from woods and developed by an environmental and economical way. The shape-stabilized PCM/CNFA composites have high latent heat which is comparable to OPCMs, high thermal conductivity (several times higher than OPCMs) and high energy conversion efficiency (82.3% for PCM-SA and 96.2% for PCM-1-TD under sunlight irradiation) which are considered potential materials in the field of energy. The maximum voltages generated by the energy harvesting system are 55 and 80 mV corresponding to the thermo- and sunlight-driven energy harvesting process, respectively, with a maximum power density of 0.50 W/m(2) and 1.20 W/m(2) in each process, which hold great potential to put low-grade waste heat and solar energy into electricity.
机译:由于温度梯度对于塞贝克效应是必要的,因此在环境空间均匀的环境中收获热电能是挑战。可持续和高效的热和阳光驱动的能量转换和储存材料由具有高性能碳纳米纤维气凝胶(CNFA)的有机相变材料(OPCM)的组合来制造,并提出作为开发能量收集系统的热量供应。能量收集系统由两种不同的PCM / CNFA复合材料(硬脂酸/ CNFA复合材料(PCM-SA)和1-四癸醇/ CNFA复合材料(PCM-1-TD))和N和P型半导体组成。它可以收集丢弃的热能和太阳能,并在具有空间均匀温度的环境中将它们转换为电能。高性能CNFAS来自树林,由环境和经济的方式开发。形状稳定的PCM / CNFA复合材料具有高潜热,其与OPCMS相当,具有高导热率(比OPCMS高几倍)和高能量转换效率(PCM-SA的82.3%,PCM-1-TD为96.2%)阳光照射)被认为是能量领域的潜在材料。由能量收集系统产生的最大电压分别对应于热量和阳光驱动的能量收集过程55和80mV,最大功率密度为0.50W / m(2)和1.20 w / m(2)在每个过程中,这具有巨大的潜力,使低级废热和太阳能变成电力。

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