Thin-film integrated spectrally-selective plasmonic absorber/emitter for solar thermophotovoltaic applications
10955591 ยท 2021-03-23
Assignee
Inventors
Cpc classification
F24S70/225
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L31/055
ELECTRICITY
Y02E10/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F24S60/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24S60/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A solar thermophotovoltaic system includes a heat exchange pipe containing a heat exchange fluid, and a thin-film integrated spectrally-selective plasmonic absorber emitter (ISSAE) in direct contact with an outer surface of the heat exchange pipe, the ISSAE including an ultra-thin non-shiny metal layer comprising a metal strongly absorbing in a solar spectral range and strongly reflective in an infrared spectral range, the metal layer having an inner surface in direct contact with an outer surface of the heat exchange pipe. The system further includes a photovoltaic cell support structure having an inner surface in a concentric configuration surrounding at least a portion of the ISSAE; and an airgap separating the support structure and the outer surface of the metal layer. The support structure includes a plurality of photovoltaic cells arranged on a portion of the inner surface of the support structure and configured to receive emissions from the ISSAE, and a solar energy collector/concentrator configured to allow solar radiation to impinge a portion of the metal layer.
Claims
1. An energy converter, comprising: an outer cylinder, said outer cylinder comprising an inner surface, said inner surface comprising at least one or more photovoltaic cells; a concentric inner cylinder, said inner cylinder comprising an outer surface and an inner cavity, said outer surface being wrapped with at least one integrated spectrally-selective plasmonic absorber/emitter, and said inner cavity being filled with heat exchange fluid; an air gap, said air gap physically separating said outer cylinder from said inner cylinder; and a means for circulating said heat exchange fluid in such a way as to deliver heat energy to said inner cavity.
2. The energy converter of claim 1, further comprising a means for allowing solar energy to reach said inner cylinder, said means being selected from the group consisting of one or more openings in said outer cylinder one or more end caps attached to at least one end of said inner cylinder, one or more lens situated in such a way as to focus solar energy on said inner cylinder, and one or more mirrors situated in such a way as to focus solar energy on said inner cylinder.
3. The energy converter of claim 1, wherein said integrated spectrally-selective plasmonic absorber/emitter is tuned to emit photons at wavelengths predominantly within the band gap of said photovoltaic cells.
4. The energy converter of claim 1, wherein said heat exchange fluid is selected from a group consisting of synthetic oil, molten salt, and pressurized vapor.
5. The energy converter of claim 1, wherein said inner cavity is connected to a means for circulating said heat exchange fluid to and from a heat storage apparatus.
6. The energy converter of claim 1, wherein said inner cavity is connected to a means for circulating said heat exchange fluid to and from a solar energy collection apparatus.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(12) This invention comprises a novel thin-film integrated spectrally-selective plasmonic absorber/emitter (ISSAE) capable of efficiently absorbing sunlight with close to black-body efficiency, but which emits with strongly-reduced efficiency in mid-infrared. Design of said ISSAE is based on an array of metal plates of engineered shape (squares, rectangles, hexagons, swiss-crosses, for example) separated from a metal ground plate by a thin dielectric. Materials for ISSAE fabrication include those which are strongly reflective in the infrared yet strongly absorptive in the UV-visible (for example Tungsten, Platinum and Molybdenum). The specific geometry of said array of metal plates, said dielectric, and said ground plate are each determined based upon the desired emissivity wavelength, being calculated using tools known to those familiar with the art, for example, the finite element method software COMSOL Multiphysics.
(13) Application of said ISSAEs includes wrapping hot surfaces, providing thermal insulation through suppression of infrared emission. Application of said ISSAEs also includes engineering their thermal emission spectrum to coincide with the bandgap of thermo-photovoltaic cells.
(14) A preferred embodiment of the ISSAE is shown in
(15) In a preferred embodiment illustrated in
(16) Distinctive Features of the Invention
(17) Distinctive features of the herein-described ISSAE include (a) the use of resonant metal-based resonators for spectrally-selective emission of infrared photons; (b) the use of non-shiny metals (W, Mo, Pt) which are strongly absorbing in the solar spectral range 250 nm<<1 m, yet are mostly reflective in the infrared spectral range >3.5 n; (c) the ultra-thin nature (in some embodiments less than 100 nm) enabling the wrapping of hot surfaces, such as pipes filled with heat-exchange fluid.
(18) The herein-described ISSAE solves several problems in the areas of solar thermal energy and thermophotovoltaics, in particular pertaining to use as part of an apparatus containing thermophotovoltaic cells that can more readily operate around the clock, including nighttime and cloudy days when sunlight is diminished or unavailable. As previously delineated, the herein-described ISSAE provides: (i) efficient sunlight absorption, (ii) efficient thermal insulation from radiative loss through emission of the infrared radiation, and (iii) spectrally-selective emission of infrared radiation, said spectrum matching the bandgap of the narrow-gap semiconductors used in the thermophotovoltaic cells. Characteristic (i) improves the efficiency of sunlight collection. Characteristic (ii) improves energy storage by providing heat insulation to hot heat-exchange agents (fluids, molten salts, for example). Characteristic (iii) improves the efficiency of electricity generation by photovoltaic cells, reduces their heating by high-energy photons, and enables the use of thinner photovoltaic cells.
(19) Present alternatives known in the art can sometimes provide a subset of the above-delineated characteristics, but not all three at once.
Preferred Embodiments of the Invention
(20) In a preferred embodiment, an ISSAE is fabricated whereby a tungsten ground plane layer is separated from a tungsten patch layer by an aluminum nitride dielectric layer, said ground plane layer being between 100 and 400 nm thick, said dielectric layer being 30 nm thick, and said patch layer being 75 nm thick. Said ground plane and dielectric layers are comprised of solid contiguous material of arbitrary width and length, whereas said patch layer is comprised of a series of 271 nm271 nm squares, spaced upon 397 nm centers in each direction.
(21) In a preferred embodiment of a solar energy conversion apparatus utilizing a preferred embodiment of the herein-described ISSAE, as illustrated in
(22) In another preferred embodiment of a solar energy conversion apparatus utilizing a preferred embodiment of the herein-described ISSAE, as illustrated in
(23) In another preferred embodiment of the herein-described ISSAE, as illustrated in