利用石墨烯优化大气离子收集电极,在电容特性和储能的基础上实现清洁能源发电

Ghitha Nadhira Azka Rahiemy, Zulfikar Irham, Yuma Estu Gumilang, Avisena Kemal El-Syifa, Duta Norma Yunita, E. T. Sulistyani
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引用次数: 0

摘要

大气层富含正离子,使其电性比地球表面更正向。这一特性使大气成为通过离子收集获得可再生能源的潜在来源。本研究利用原始石墨烯和石墨烯-金薄膜优化离子收集电极,从而利用其电气特性产生清洁电力。研究方法包括拉曼光谱和循环伏安法(CV),以评估石墨烯样品的表面特性和电容,以及实验室规模的离子收集模拟,以评估离子收集过程中产生的能量数据。本研究中使用的样品经拉曼光谱仪确认为双层石墨烯。CV 测试得出原始石墨烯的电容值为 0.40288 F,石墨烯-金样品的电容值为 0.44879 F。根据离子收集模拟,石墨烯-金产生的能量大约是原始石墨烯的 6.8 倍,是铜单独能量的 5 倍。石墨烯-金、原始石墨烯和纯铜的能量输出分别为 1.376 mW、1.157 mW 和 0.374 mW。这些结果表明,在大气离子收集电极上添加石墨烯层可以优化发电过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimizing Atmospheric Ion Harvesting Electrodes with Graphene for Clean Energy Generation Based on Capacitive Properties and Energy Storage
The atmosphere is rich in positive ions, rendering it electrically more positive than the Earth's surface. This characteristic presents the atmosphere as a potential source of renewable energy through ion harvesting. This study harnesses the electrical properties by optimizing ion harvesting electrodes using pristine graphene and graphene-Au thin films to generate clean electricity. Research methods included Raman Spectroscopy and Cyclic Voltammetry (CV) to assess the surface characteristics and capacitance of the graphene samples, along with laboratory-scale ion harvesting simulations to evaluate the energy data produced in the ion harvesting process. The samples used in this study were identified as bilayer graphene, as confirmed by Raman Spectroscopy. CV testing yielded capacitance values of 0.40288 F for pristine graphene and 0.44879 F for graphene-Au samples. According to ion harvesting simulations, graphene-Au generated approximately 6.8 times more energy than pristine graphene and five times more energy than copper alone. The respective energy outputs for graphene-Au, pristine graphene, and pure copper were 1.376 mW, 1.157 mW, and 0.374 mW. These results demonstrate that adding a graphene layer to the atmospheric ion-harvesting electrode can optimize the electricity generation process.
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