IP Library › Granted Patent US 12,451,734
Granted Patent B2
US 12,451,734 · App. 18/421,079 · Granted Oct 21, 2025

Photovoltaic cell for laser beam power detection

Inventors: Ortal Alpert (Ness Ziona, IL); Ori Refael Mor (Tel Aviv, IL); Lior Golan (Ramat Gan, IL); Ran Sagi (Tel Aviv, IL); Eyal Conforti (Tel Aviv, IL)
Assignee: Wi-Charge Ltd.
H02J50/30H02S40/30H10F77/315H10F77/488Y02E10/52
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Quick Facts
Patent No.
US 12,451,734
App. No.
18/421,079
Granted
Oct 21, 2025
Kind
B2
Abstract

A wireless optical power transmission system comprising a transmitter and receiver, the transmitter comprising a laser emitting a beam, a scanning mirror for steering the beam towards said receiver and a control unit receiving signals from a detection unit on the receiver and controlling the beam power and the scanning mirror. The receiver has a photovoltaic cell having a bandgap energy of 0.75-1.2 eV, with a plurality of conductors on a beam receiving surface. A cover layer of material blocking illumination of wavelengths outside that of the laser, is disposed on the photovoltaic cell. The cover layer may have anti-reflective coatings on its top and bottom surfaces. The detection unit thus generates a signal representing the power of the laser beam impinging upon the receiver, independent of illuminations other than that of said laser beam. The control unit thus can maintain the laser power impinging on the receiver.

Claims (33)

1. A safety system for a wireless optical power transmission system comprising a transmitter, a receiver and a control unit, wherein:

(i) said transmitter comprises:

a laser adapted to emit a beam; and

a scanning mirror adapted for steering said beam towards said receiver;

(ii) said receiver comprises:

a photovoltaic cell having a plurality of conductors on a surface adapted to receive said laser beam, said photovoltaic cell having at least one junction having a bandgap energy between 0.75 eV and 1.2 eV; and

a cover layer disposed upon said photovoltaic cell, said cover layer comprising a material adapted to restrict by either absorption or reflection, illumination having wavelengths outside of the range of the wavelength of said laser beam, and to transmit said laser beam towards said photovoltaic cell; and

(iii) said control unit is adapted to receive first data representing the position of said scanning mirror, and to receive second data from said transmitter representing the power of said beam emitted by said laser, and to determine from said first and second data, an expected power incident on said photovoltaic cell, and to compare said expected power with said power of said laser beam impinging upon said receiver, as measured by said photovoltaic cell, and to indicate a potential safety problem if said expected power deviates from said measured power by more than a predetermined level.

2. A safety system for a wireless optical power transmission system according to claim 1 , wherein the laser has a wavelength of between 700 nm and 1500 nm, and wherein the illumination having wavelengths outside of the range of the wavelength of said laser beam, is at least one of radiation having a wavelength of between 300 nm and 550 nm, radiation having a wavelength of between 550 nm, and 700 nm, and radiation having a wavelength of between 1,500 nm and 2,000 nm.

3. A safety system for a wireless optical power transmission system, according to claim 1 , wherein the photovoltaic cell has a bandgap sufficiently low that it is essentially insensitive to illumination having a wavelength longer than that of the laser.

4. A safety system for a wireless optical power transmission system, according to claim 3 , wherein the wavelength longer than that of the laser lies in the range of 1,500 nm to 2,000 nm.

5. A safety system for a wireless optical power transmission system, according to claim 1 , wherein illumination having wavelengths outside of the range of the wavelength of said laser beam are either absorbed or reflected by the cover layer.

6. A safety system for a wireless optical power transmission system, according to claim 1 , wherein the transmission of the cover layer for the wavelength of the laser beam is at least 50% higher than its transmission for wavelengths within the range of 550 nm to 700 nm, such that the photovoltaic cell has an efficiency of conversion of the laser beam to electrical power at least 2.5 times higher than its conversion efficiency at a wavelength of 550 nm.

7. A safety system for a wireless optical power transmission system, according to claim 1 , wherein the cover layer is configured to transmit the laser beam into said photovoltaic cell with at least 80% efficiency, when the cover layer is illuminated from any direction between #20° to the normal of the surface of the cover layer.

8. A wireless optical power transmission system comprising a transmitter and receiver, said transmitter comprising:

a laser adapted to emit a beam;

a scanning mirror adapted for steering said beam towards said receiver; and

a control unit adapted to receive signals from a detection unit on said receiver, and to control at least one of (i) the power of said beam emitted by said laser and (ii) a position of said scanning mirror:

said receiver comprising:

a photovoltaic cell having a plurality of conductors on a surface adapted to receive said laser beam, said photovoltaic cell having at least one junction having a bandgap energy between 0.75 eV and 1.2 eV, said photovoltaic cell adapted to detect said power of said laser beam reaching said photovoltaic cell;

wherein:

said receiver comprises a cover layer disposed upon said photovoltaic cell, said cover layer comprising a material adapted to absorb or reflect illumination having wavelengths outside of the range of the wavelength of said laser beam, and to transmit said laser beam towards said photovoltaic cell; and at least one of:

(i) a first anti-reflective coating disposed upon the surface of said cover layer remote from said photovoltaic cell, said first anti-reflective coating adapted to reflect illumination having wavelengths outside of the range of the wavelength of said laser beam, and to transmit said laser beam into said cover layer; and

(ii) a second anti-reflective coating disposed between the surface of said photovoltaic cell and said cover layer, said second anti-reflective coating adapted to reflect illumination having wavelengths outside of the range of the wavelength of said laser beam, and to transmit said laser beam into said photovoltaic cell;

and wherein,

said detection unit generates a signal representing the power of said laser beam impinging upon said receiver, independent of illumination of other wavelengths other than that of said laser beam, and said control unit is adapted to control at least one of (i) said beam and (ii) said position of said scanning mirror in order to maintain said power impinging on said receiver.

9. A wireless optical power transmission system according to claim 8 , wherein the detection unit generates the signal representing the power of said laser beam impinging upon said receiver from the output of the photovoltaic cell.

10. A wireless optical power transmission system according to claim 8 , wherein the laser has a wavelength of between 700 nm and 1500 nm, and wherein the illumination having wavelengths outside of the range of the wavelength of the laser beam, is at least one of radiation having a wavelength of between 300 nm and 550 nm, radiation having a wavelength of between 550 nm, and 700 nm, and radiation having a wavelength of between 1,500 nm and 2,000 nm.

11. A wireless optical power transmission system according to claim 8 , wherein the photovoltaic cell has a bandgap sufficiently low that it is essentially insensitive to illumination having a wavelength longer than that of the laser.

12. A wireless optical power transmission system according to claim 11 , wherein the wavelength longer than that of the laser lies in the range of 1,500 nm to 2,000 nm.

13. A wireless optical power transmission system according to claim 8 , wherein illumination having wavelengths longer than that of the laser are either absorbed or reflected by the cover layer.

14. A wireless optical power transmission system according to claim 8 , wherein the transmission of the cover layer for the wavelength of the laser beam is at least 50% higher than its transmission for wavelengths within the range of 550 nm to 700 nm, such that the photovoltaic cell has an efficiency of conversion of the laser beam to electrical power at least 2.5 times higher than its conversion efficiency at a wavelength of 550 nm.

15. A wireless optical power transmission system according to claim 8 , wherein the cover layer is configured to transmit the laser beam into the photovoltaic cell with at least 80% efficiency, when the cover layer is illuminated from any direction between +20° to the normal of the surface of the cover layer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 24, 2024
From: ALPERT, ORTAL; MOR, ORI REFAEL; GOLAN, LIOR; SAGI, RAN; CONFORTI, EYAL
To: WI CHARGE LTD.
Reel/Frame 066230/0269 →
Continuity (3)
Continuation 17440809
Provisional Application 62821143 · Mar 20, 2019
Related Publication 20240195225A1 · Jun 13, 2024
References Cited (39)
US 9312701B1 · Mor · 2016 [cited by applicant]
US 11204456B2 · Du · 2021 [cited by applicant]
US 20070125415A1 · Sachs · 2007 [cited by applicant]
US 20080092942A1 · Kinsey · 2008 [cited by applicant]
US 20090255569A1 · Sampsell · 2009 [cited by applicant]
US 20100096011A1 · Griffiths · 2010 [cited by applicant]
US 20130112256A1 · Yu · 2013 [cited by applicant]
US 20150054342A1 · Kim · 2015 [cited by applicant]
US 20150187971A1 · Sweeney · 2015 [cited by applicant]
US 20170018976A1 · Mor · 2017 [cited by applicant]
US 20170033250A1 · Ballif · 2017 [cited by applicant]
US 20170346347A1 · Abiri · 2017 [cited by applicant]
US 20190033502A1 · Du · 2019 [cited by applicant]
US 20190036476A1 · Xu · 2019 [cited by applicant]
US 20190064353A1 · Nugent, Jr. · 2019 [cited by applicant]
CN 101257053A · 2008 [cited by applicant]
CN 109212647A · 2019 [cited by applicant]
JP 2016092243A · 2016 [cited by applicant]
WO 2013092259A2 · 2013 [cited by applicant]
WO 2018014131A1 · 2018 [cited by applicant]
Translation of Office Action in CN application No. 202080036946.7, dated Nov. 4, 2024 11 pages. [cited by applicant]
Translation of Office Action in JP Patent Application 2021-556215, mail date Feb. 13, 2024, 3 pages. [cited by applicant]
Translation of Office Action in CN Patent Application 202080036946.7, mail date Mar. 1, 2024, 5 pages. [cited by applicant]
Translation of Office Action in KR Patent Application No. 10-2021-7032944 mail date Jul. 17, 2024, 8 pages. [cited by applicant]
International Search Report and Written Opinion for PCT Appl. No. PCT/IL2020/050336 mail date Jun. 22, 2020, 19 pages. [cited by applicant]
International Preliminary Report on Patentability for PCT Appl. No. PCT/IL2020/050336 mail date Sep. 30, 2021, 8 pages. [cited by applicant]
European Extended Supplementary Search Report in EP Appl. No. 20773899.8, mail date Jan. 2, 2023, 10 pages. [cited by applicant]
Stuart R. Wenham et al.“Applied Photovoltaics” 3rd edition copyrighted 2012. p. 62. ISBN-13: 978-1849711425 ISBN-10: 1849711429. [cited by applicant]
Lumb et al. “GaSb-Based Solar Cells for Full Solar Spectrum Energy Harvesting” Adv. Energy Matter. 2017, 1700345 (2017). [cited by applicant]
T.N.D Tibbits et al. “Comparison of direct growth and wafer bonding for the fabrication of GalnP/GaAs dual-junction solar cells on silicon” 29th PV Solar Energy Conference and Exhibition, Sep. 2014, Amsterdam, The Nethe… [cited by applicant]
Garcia-Linares “ Reduction of front-metallization grid shading in concentrator cells through laser micro-grooved cover glass” AIP Conference Procedings 1679, 06001 (2016), doi: 10.1063/1.4931535. [cited by applicant]
K Shanks et al. “Optics for concentrating photovoltics: Trends, limits and opportunities for materials and design” Renewable and Sustainable Energy Reviews, 60 (2016), pp. 394-407 (2016). [cited by applicant]
A.W. Blakers “Shading losses of solar-cell metal grids”, Journal of Applied Physics, vol. 71, 5237 (1992). [cited by applicant]
Grid Calculator. PV Lighthouse. (n.d.). Retrieved Jan. 31, 2023, from https://www2.pvlighthouse.com.au/calculators/Grid%20calculator/Grid%20calculator.aspx. [cited by applicant]
Green, M. A. (2017). Corrigendum to ‘solar cell efficiency tables (version 49)’[prog. Photovolt: Res. appl. 2017; 25:3-13]. Progress in Photovoltaics: Research and Applications, 25(4), 333-334. [cited by applicant]
Office Action for U.S. Appl. No. 17/440,809 mail date Aug. 17, 2023, 23 pages. [cited by applicant]
Notice of Allowance for U.S. Appl. No. 17/440,809 mail date Oct. 10, 2023, 7 pages. [cited by applicant]
Extended European Search Report for Foreign Appliction No. 24212355.2 mail date May 16, 2025, 9 pages. [cited by applicant]
Office Action for Chinese Patent Application No. 202080036946.7, dated Jul. 17, 2025, 8 pages. [cited by applicant]