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      Power generation from a radiative thermal source using a large-area infrared rectenna

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          Abstract

          Electrical power generation from a moderate temperature thermal source by means of direct conversion of infrared radiation is important and highly desirable for energy harvesting from waste heat and micropower applications. Here, we demonstrate direct rectified power generation from an unbiased large-area nanoantenna-coupled tunnel diode rectifier, called a rectenna. Using a vacuum radiometric measurement technique with irradiation from a temperature-stabilized thermal source, a generated power density of 8 nW/cm\(^2\) is observed at a source temperature of 450C for the unbiased rectenna across an optimized load resistance. The optimized load resistance for the peak power generation for each temperature coincides with the tunnel diode resistance at zero bias and corresponds to the impedance matching condition for a rectifying antenna. Current voltage measurements of a thermally illuminated large-area rectenna show current zero crossing shifts into the second quadrant indicating rectification. Photon-assisted tunneling in the unbiased rectenna is modeled as the mechanism for the large short-circuit photocurrents observed where the photon energy serves as an effective bias across the tunnel junction. The measured current and voltage across the load resistor as a function of the thermal source temperature represents direct current electrical power generation.

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          Dependence of the Si‐SiO2barrier height on SiO2thickness in MOS tunnel structures

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            Optical rectification using geometrical field enhancement in gold nano-arrays

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              Author and article information

              Journal
              08 January 2018
              Article
              1801.02544
              0a5b209f-5d1a-4311-a4f3-8c6d76c2363b

              http://arxiv.org/licenses/nonexclusive-distrib/1.0/

              History
              Custom metadata
              8 pages, 7 figures, Journal submission
              physics.app-ph

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