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Optimal solar energy harvesting efficiency of nano-rectenna systems

机译:纳米整流天线系统的最佳太阳能收集效率

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摘要

Recently, upper bounds have been derived for the efficiency of nantenna(=nano antenna) systems for solar energy harvesting. The maximum upper bounds were found to be in the order of 60-70% for dipoles made of silver. These upper bounds are determined solely by the losses in the nantenna. In this paper, the second crucial factor in the efficiency product for a real nano-rectenna topology is studied: the matching efficiency due to the unavoidable mismatch between nantenna and rectifier impedance. Since suitable rectifiers do not exist yet, and since it would be totally unfeasible to optimize the nantenna - rectifier system based on experiments, for obvious reasons of cost per fabricated sample, an optimization technique is used based on full-wave simulations to assess the efficiency that can be reached when the two impedances are optimally compatible. To this goal, first a comprehensive numerical study is made of the impedance of nano dipoles made from three different metals and deposited on a glass substrate. Then the rectifier impedance is determined for which the matching efficiency is maximum. Two different rectifier impedance models are involved. They are (1) the polynomial (Oth, 1st, and 2nd order) model and (2) the equivalent circuit (EC) model for the non-packaged case. The result is that a maximum matching efficiency of about 97% can be reached for Al dipoles, while a maximum efficiency product of upper bound and matching efficiency of about 54% can be reached, in this case for Ag dipoles. These values are reached for a 2nd order polynomial model. Important is also that the results for the EC model are almost identical to the results of the Oth order polynomial model. Finally, the maximum power delivered by a single linearly polarized dipole is shown to be in the order of 5-10 pW.
机译:近来,已经得出了用于收集太阳能的纳米天线(=纳米天线)系统的效率的上限。发现由银制成的偶极子的最大上限约为60-70%。这些上限仅由天线损耗决定。在本文中,研究了实际纳米整流天线拓扑效率积的第二个关键因素:由于天线和整流器阻抗不可避免的失配而导致的匹配效率。由于尚不存在合适的整流器,并且由于基于实验来优化纳米天线-整流器系统将是完全不可行的,出于明显的每个样品成本的原因,因此基于全波仿真使用了一种优化技术来评估效率当两个阻抗达到最佳兼容时,可以达到此目标。为此,首先对由三种不同金属制成并沉积在玻璃基板上的纳米偶极子的阻抗进行了全面的数值研究。然后,确定匹配效率最大的整流器阻抗。涉及两种不同的整流器阻抗模型。它们是(1)多项式(零阶,一阶和二阶)模型,以及(2)非封装情况的等效电路(EC)模型。结果是,对于Al偶极子,可以达到大约97%的最大匹配效率,而对于Ag偶极子,可以达到大约54%的上限和匹配效率的最大效率乘积。对于二阶多项式模型,可以达到这些值。重要的是EC模型的结果几乎与Oth阶多项式模型的结果相同。最后,单个线性极化偶极子提供的最大功率显示为5-10 pW。

著录项

  • 来源
    《Solar Energy》 |2013年第2期|163-174|共12页
  • 作者单位

    Katholieke Universiteit Leuven, ESATITELEMIC, Kasteelpark Arenberg 10, B-3001 Leuven, Belgium;

    Katholieke Universiteit Leuven, ESATITELEMIC, Kasteelpark Arenberg 10, B-3001 Leuven, Belgium;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    solar energy harvesting; rectenna; nano antenna; rectifier;

    机译:太阳能收集;整流天线纳米天线整流器;

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