Thin-film integrated spectrally-selective plasmonic absorber/emitter for solar thermophotovoltaic applications

Information

  • Patent Grant
  • 11435506
  • Patent Number
    11,435,506
  • Date Filed
    Friday, March 19, 2021
    3 years ago
  • Date Issued
    Tuesday, September 6, 2022
    a year ago
  • Inventors
  • Original Assignees
    • IP Equity Management, LLC (Nashville, TN, US)
  • Examiners
    • Mowla; Golam
Abstract
A solar thermophotovoltaic system has a heat exchanger 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 exchanger, the ISSAE including an ultra-thin non-shiny metal layer that is strongly absorbing in a solar spectral range and strongly reflective in an infrared spectral range. The metal layer has an inner surface in direct contact with an outer surface of the heat exchanger. A photovoltaic cell support structure with an inner surface in a concentric configuration partially surrounds the ISSAE; and an airgap separates the support structure and the outer surface of the metal layer. Photovoltaic cells are arranged on a portion of the inner surface of the support structure to receive emissions from the ISSAE, and a solar energy collector/concentrator allows solar radiation to impinge a portion of the metal layer.
Description
BACKGROUND

The inventions to the fields of solar thermal energy and solar thermophotovoltaics.


Spectral control of the surface emissivity is essential in applications pertaining to concentrated solar thermal (CST) systems and solar thermophotovoltaic (TPV) systems because it enables high conversion efficiency. Ideally, said spectral control might employ thin-film structures which simultaneously function as (i) efficient broad-band absorbers of solar radiation in the spectral region 250 nm<λ<I μm, (ii) extremely poor absorbers of any infrared radiation for λ>3.5 μm, and (iii) spectrally selective infrared emitters that can be tuned to emit in the 1.5 μm<λ<2.5 μm range, thus matching the bandgap of the particular TPVs employed.


Thin-film structures capable of accomplishing some of these requirements have been proposed, but none of them to date accomplishes all three at once.


SUMMARY

This invention comprises a novel thin-film integrated spectrally-selective plasmonic absorber/emitter (ISSAE) that functions as (i) an efficient broad-band absorber of solar radiation in the spectral region 250 nm<λ<I μm, (ii) an extremely poor absorber of any infrared radiation for λ>3.5 μm (this lower bound can be engineered depending on the desired operating temperature of the hot surface), and (iii) a spectrally selective infrared emitter that can be tuned to emit in the 1.5 μm<λ<2.5 μm range.


The ISSAE described herein enables building day-and-night TPV systems capable of producing electricity with and without sunlight. During the day, the high temperature of the ISSAE is maintained by the incident sunlight. The ISSAE heats the heat-exchange fluid circulated inside long thermally-insulated pipes, as well as provides IR photons to the photovoltaic cell for electricity production. During the night, the high temperature of the ISSAE is maintained by the heat released by the heat-exchange fluid. The hot ISSAE continues supplying infrared photons to the photovoltaic cell for night-time electricity production. The efficiency of this day-and-night system is enhanced because the ultra-thin film is wrapped continuously (with no geometric breaks) around the heat-exchange pipe and performs all three functions at once: absorption, thermal insulation against radiative energy loss, and selective emission.


By Kirchhoff's Law, low infrared absorption implies low infrared emission. Therefore, when heated to high temperatures, a hot surface cloaked in the herein-described ISSAE emits much less infrared radiation than the one without such a wrapping. Moreover, the herein-described ISSAE can be designed so as to reflect all or most of the incident infrared radiation except in a narrow frequency band. Quantitatively, Kirchhoff's Law relates emissivity of the structure to its absorption through the simple formula for “grey body” emission: EGB(λ,T)=EBB(λ,T)×Ā(λ) where EBB(λ) is the broad Black Body emission while Ā(λ) is the angle-averaged absorptivity of the Grey Body. It is the ability to engineer Ā(λ) that in turn enables us to engineer the “grey body” emission to meet the need of various applications. Specifically, by designing Ā(λ) to vanish for most wavelengths except in the narrow spectral range, we can accomplish three goals.


A first goal is to significantly (by orders of magnitude) reduce the spectrally-integrated emissivity. Accomplishing this is equivalent to achieving thermal isolation. A small power source can then be used to heat up the isolated sample to a higher temperature than that possible without thermal isolation. This is the consequence of the power balance between the solar power delivered to the sample and the temperature-dependent infrared emission. Moreover, the reduction of infrared losses results in a more compact system because less or no solar concentration is required.


A second goal is to efficiently absorb all or most of the solar radiation incident on the hot surface from the Sun without emitting any of the infrared radiation produced by the hot surface itself. This is possible because the Sun is much hotter than the envisioned hot surface. Therefore, solar light absorption is spectrally removed from the hot surface's infrared emission. A preferred embodiment capable of accomplishing this goal is illustrated in FIG. 1. Note that normal reflectivity is under 20% (i.e. absorption is over 80%) for the solar range 250 nm<λ<I μm. However, the infrared reflectivity exceeds 90% (or absorption and emissivity are below 10%) in the infrared for λ>3.5 μm. These properties persist for oblique incidence. As the result, a hot surface wrapped by one or more of the herein-described ISSAE embodiments can be effectively thermally insulated. For example, a flat ISSAE surface can be heated to 280 C by direct overhead sunlight (no solar concentration assumed), whereas the black body surface subjected to the same illumination would only heat to 100 C. Of course, higher temperatures are achievable using solar concentrators that focus the sunlight onto the ISSAE.


A third goal is to target a particular emission spectrum. Hence, the radiation that is absorbed from an external source is predominantly emitted within a narrow spectral range. The emission profile is engineered by changing the parameters of the herein described ISSAE. The emission wavelength can be matched to the bandgap of a particular type of photovoltaic cell, thereby increasing the efficiency of energy conversion into electricity. Example spectral radiance data for a hot surface cloaked in an ISSAE wrapper is shown in FIG. 2, for hot plate temperatures of 500 K, 600 K, and 700 K. The emission peak is engineered to occur at λ=2.5 μm (or hoo=0.5 eV). One semiconductor whose bandgap coincides with this photon energy is InGaAsSb.





DESCRIPTION OF THE DRAWINGS


FIG. 1 illustrates the reflectivity of a preferred embodiment of an ISSAE.



FIG. 2 illustrates the spectral radiance of a preferred embodiment of an ISSAE.



FIG. 3 illustrates the dimensions and materials of a preferred embodiment of an ISSAE.



FIG. 4 illustrates conceptually a preferred embodiment of a TPV system comprising a preferred embodiment of an ISSAE.



FIG. 5 illustrates the thermal equilibrium of a preferred embodiment of an ISSAE. This specific ISSAE provides thermal insulation and enables heating to higher temperature. Thermal insulation simplifies solar concentration, sometimes making it unnecessary.



FIG. 6 illustrates conceptually a preferred embodiment of a TPV system comprising a preferred embodiment of an ISSAE. The ISSAE absorbs solar light, causes the hotplate to be heated to high temperature, and then re-emits light in the form of infrared photons. The IR photons are absorbed by the photovoltaic cell and converted into electricity.



FIG. 7 illustrates conceptually a preferred embodiment of a TPV system comprising a preferred embodiment of an ISSAE. This embodiment takes advantage of the asymmetric nature of the IR emissivity of the ground plate based spectrally selective emitter: it can absorb light incident from the ground plate's side, yet emits IR photons only away from the Sun towards the PV cell.



FIG. 8 illustrates a preferred embodiment of an ISSAE. The structure containing metal patches is separated from a “holey” ground plate.



FIG. 9A illustrates a preferred embodiment of an ISSAE. The upper region comprises squares of non-shiny refractory metal (ex: tungsten or molybdenum). The lower region comprises non-metallic spacer material (ex: aluminum nitride).



FIG. 9B illustrates conceptually a preferred embodiment of a TPV system comprising a preferred embodiment of an ISSAE, employing the ISSAE and a heat exchange fluid to extend the power-generating period beyond the daytime.



FIG. 9C illustrates the calculated absorbance spectra of a plurality of variations on the preferred embodiment of FIG. 9A.





DETAILED DESCRIPTION

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.


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.


A preferred embodiment of the ISSAE is shown in FIG. 3, illustrating both a unit cell and a film comprised of a plurality of said cells. Square metal patches are employed within this particular embodiment, whereas other preferred embodiments employ different shapes. One of the features of the herein-described ISSAE is that it is extremely thin (typically under 100 nm) and, therefore, flexible. Thus, the ISSAE can be conformally wrapped around heat exchange structures, for example hollow tubes that contain heat exchange fluid, such as synthetic oil, molten salt, or pressurized vapor, circulating through them.


In a preferred embodiment illustrated in FIG. 4, the TPV cells are placed outside of a cylindrically-shaped absorber/emitter comprised of said ISSAE. This geometry is attractive because heat-exchange fluid can be circulated inside the absorber/emitter and used to store heat for night-time operation. Moreover, combining the functions of the absorber and emitter within a single ISSAE, we can employ fully cloaked heat exchange pipes that better retain heat for use during nighttime operation. Any geometrical break/interruption of the absorber/emitter would otherwise result in additional infrared radiation losses. Note that this embodiment uses the inner surface of said ISSAE as the absorber and the outer surface of said ISSAE as the emitter, said ISSAE being wrapped around a fluid-carrying pipe and surrounded by one or more PV cells.


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<λ<I μm, yet are mostly reflective in the infrared spectral range λ>3.5 μn; (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.


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.


Present alternatives known in the art can sometimes provide a subset of the above-delineated characteristics, but not all three at once.


In an 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 nm×271 nm squares, spaced upon 397 nm centers in each direction. FIG. 3 illustrates this geometry, and further illustrates the reflectivity of said ISSAE across a wide spectrum. FIG. 5 illustrates the thermal emission and absorption of said ISSAE at temperatures between 300 and 1000 K.


In a preferred embodiment of a solar energy conversion apparatus utilizing a preferred embodiment of the herein-described ISSAE, as illustrated in FIG. 6, said ISSAE is deposited on top of a cylindrical object that serves as a hot plate, in such a way that said ISSAE absorbs solar light and heats said hot plate to a high temperature. Because said ISSAE is deposited onto said hot plate, said ISSAE also reaches a high temperature, which causes said ISSAE to re-emit light in the form of infrared photons. Said infrared photons are then absorbed by one or more photovoltaic cells situated around the hot plate, and converted into electricity. Each photovoltaic cell is chosen in such a way as to match its band-gap to the wavelength of infrared photons emitted by the ISSAE, thereby enabling the efficient transfer of energy between the ISSAE and the photovoltaic cell.


In another preferred embodiment of a solar energy conversion apparatus utilizing a preferred embodiment of the herein-described ISSAE, as illustrated in FIG. 7, said ISSAE is deposited on a transparent planar hot plate, said hot plate absorbing light incident from the ground plate's side, and emitting IR photons away from the solar source, towards the photovoltaic cell. Each photovoltaic cell is comprised of a p-n junction of a semiconductor with a band gap tuned to the wavelength of the emitted IR photons. In other preferred embodiments, said photovoltaic cells are based on other physical photon absorption mechanisms, such as field emission across the Schottky barrier in a metal-semiconductor junction.


In another preferred embodiment of the herein-described ISSAE, as illustrated in FIG. 8, the ground plane layer of the ISSAE comprises a series of engineered holes regularly spaced in relationship to the patch layer.



FIG. 9A illustrates another preferred embodiment of an ISSAE. The upper region comprises squares of non-shiny refractory metal (ex: tungsten or molybdenum). The lower region comprises non-metallic spacer material (ex: aluminum nitride). FIG. 9B illustrates conceptually an embodiment of a TPV system comprising a preferred embodiment of an ISSAE, employing the ISSAE and a heat exchange fluid to extend the power-generating period beyond the daytime. FIG. 9C illustrates the calculated absorbance spectra of a plurality of variations of geometric dimensions of the embodiment of FIG. 9A.
















Curve
Length (L)
Width (W)
Depth (D)
G







A
383 nm
206 nm
83 nm
27 nm


B
393 nm
230 nm
79 nm
24 nm


C
404 nm
252 nm
73 nm
23 nm


D
396 nm
269 nm
72 nm
22 nm








Claims
  • 1. A day-and-night thermophotovoltaic (TPV) system for producing electricity with and without sunlight, comprising: an integrated spectrally-selective plasmonic absorber/emitter (ISSAE) configured to receive and absorb incident light in the range of 250 nm<λ<1 μm and reflect light for λ>3.5 μm, the ISSAE comprising an ultra-thin metal layer formed from a metal chosen from a group consisting of tungsten, platinum, and molybdenum;a heat exchanger, comprising: an outer cylinder, the outer cylinder comprising an inner surface, the inner surface comprising the photovoltaic cells,a concentric inner cylinder, the inner cylinder comprising an outer surface and an inner cavity, the outer surface wrapped with the ISSAE and the inner cavity filled with heat exchange fluid, andan air gap physically separating the outer cylinder from the inner cylinder; anda plurality of photovoltaic cells positioned to receive infrared emissions from the ultra-thin metal layer.
  • 2. The TPV system of claim 1, wherein the ultra-thin metal layer is wrapped continuously with no geometric breaks around the heat exchanger.
  • 3. The TPV system of claim 1, wherein the ultra-thin metal layer has a thickness of 100 nm or less.
  • 4. The TPV system of claim 1, the heat exchanger, comprising: means for allowing solar energy to reach the inner cylinder, the means selected from a group consisting of: one or more openings in the outer cylinder,one or more end caps attached to at least one end of the inner cylinder,one or more lenses situated to focus solar energy on the inner cylinder, andone or more mirrors situated to focus solar energy on the inner cylinder, wherein the heat exchange fluid is circulated to deliver heat energy to said inner cavity.
  • 5. The TPV system of claim 4, wherein the ISSAE is tuned to emit photons at wavelengths predominantly within the band gap of the photovoltaic cells.
  • 6. The TPV system of claim 1, wherein the heat exchange fluid is selected from a group consisting of synthetic oil, molten salt, and pressurized vapor.
  • 7. The TPV system of claim 1, wherein the inner cavity is configured for circulating the heat exchange fluid to and from a heat storage apparatus.
  • 8. The TPV system of claim 1, wherein the inner cavity is configured for circulating the heat exchange fluid to and from a solar energy collection apparatus.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a division of U.S. patent application Ser. No. 16/722,122, entitled “THIN-FILM INTEGRATED SPECTRALLY-SELECTIVE PLASMONIC ABSORBER/EMITTER FOR SOLAR THERMOPHOTOVOLTAIC APPLICATIONS,” filed Dec. 20, 2019, which is a division of U.S. patent application Ser. No. 16/249,295 entitled “THIN-FILM INTEGRATED SPECTRALLY-SELECTIVE PLASMONIC ABSORBER/EMITTER FOR SOLAR THERMOPHOTOVOLTAIC APPLICATIONS” filed Jan. 16, 2019, now U.S. Pat. No. 10,591,650, issued Mar. 17, 2020, which is a division of U.S. patent application Ser. No. 13/306,975 entitled “THIN-FILM INTEGRATED SPECTRALLY-SELECTIVE PLASMONIC ABSORBER/EMITTER FOR SOLAR THERMOPHOTOVOLTAIC APPLICATIONS,” filed Nov. 29, 2011, now U.S. Pat. No. 10,197,711, issued Feb. 5, 2019. This application also claims priority pursuant to 35 U.S.C. § 119(e) to U.S. Provisional Patent Application 61/487,493 entitled “THIN-FILM METAMATERIALS FOR SOLAR THERMAL ENERGY AND SOLAR THERMOPHOTOVOLTAICS (TPV) APPLICATIONS,” filed May 17, 2011, which is hereby incorporated herein by reference in its entirety.

STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT

Development of this invention was in whole or in part supported by an Office of Naval Research (ONR) Grant No. N00014-10-1-0929. The U.S. government may have certain rights in this application.

US Referenced Citations (18)
Number Name Date Kind
2989575 Wallace, Jr. Jun 1961 A
3802920 Salles Apr 1974 A
4106952 Kravitz Aug 1978 A
4238247 Oster, Jr. Dec 1980 A
4248643 Peters Feb 1981 A
4884860 Brown Dec 1989 A
5611870 Horne Mar 1997 A
5932029 Stone Aug 1999 A
6091018 Fraas Jul 2000 A
6583350 Gee Jun 2003 B1
7235736 Buller Jun 2007 B1
7619159 Ortabasi Nov 2009 B1
8410350 Corrales Apr 2013 B2
20040231717 Greiff Nov 2004 A1
20100126567 Kaufman May 2010 A1
20100319749 Greiff Dec 2010 A1
20110232211 Farahi Sep 2011 A1
20120167949 Dentinger Jul 2012 A1
Related Publications (1)
Number Date Country
20210278572 A1 Sep 2021 US
Provisional Applications (1)
Number Date Country
61487493 May 2011 US
Divisions (3)
Number Date Country
Parent 16722122 Dec 2019 US
Child 17206213 US
Parent 16249295 Jan 2019 US
Child 16722122 US
Parent 13306975 Nov 2011 US
Child 16249295 US