UV PEST REPELLING, KILLING, AND/OR DAMAGING DEVICE AND METHOD FOR THE SAME
20250241291 · 2025-07-31
Inventors
- Peter Johansen (Åbyhøj, DK)
- Jens Christian LANGHOFF (Åbyhøj, DK)
- Christian Kanstrup HOLM (Åbyhøj, DK)
- Nicolas Volet (Åbyhøj, DK)
Cpc classification
A01M1/226
HUMAN NECESSITIES
A01M29/10
HUMAN NECESSITIES
G02F1/353
PHYSICS
International classification
Abstract
The present invention relates to a pest repelling, killing, and/or damaging UV light-emitting device (100) comprisinga housing (200),a control element (110) configured to output a control signal (111), anda UV light-emitting element (115) configured to emit, in response to the control signal (111), far-UVC light (125) thereby repelling, killing, and/or damaging one or more pests, e.g. or in particular mosquitos, irradiated by the emitted far-UVC light (125).
Claims
1. A pest repelling UV light-emitting device comprising a housing, a control element configured to output a control signal, and a UV light-emitting element configured to emit, in response to the control signal, far-UVC light thereby repelling one or more pests, e.g. or in particular mosquitos, irradiated by the emitted far-UVC light.
2. The pest repelling, UV light emitting device according to claim 1, wherein the UV light emitting element is configured to emit far-UVC light comprising or having a wavelength or peak wavelength of 230 nanometres or about 230 nanometres or less, comprising or having a wavelength or peak wavelength selected from about 200 nanometres to about 230 nanometres, or comprising or having a wavelength or peak wavelength selected from 210/about 210 nanometres to 225/about 225 nanometres.
3. The pest repelling UV light emitting device according to claim 1, wherein the UV light emitting element is configured to emit far-UVC light comprising or having a peak wavelength of 222 nanometres or about 222 nanometres.
4. The pest repelling UV light emitting device according to claim 1, wherein the pest repelling UV light emitting device further comprises one or more user interface elements and wherein the control element is configured to output the control signal in response to one or more signals provided by or obtained from the one or more user interface elements.
5. The pest repelling UV light emitting device according to claim 1, wherein the UV light emitting element is or comprises at least one far-UVC LED, at least one far-UVC field emission device, and/or at least one far-UVC laser.
6. The pest repelling UV light emitting device according to claim 1, wherein the UV light emitting element is a far-UVC excimer lamp.
7. The pest repelling UV light emitting device according to claim 1, wherein the pest repelling UV light emitting device or the UV light emitting element comprises an optical band-pass filter configured to filter the far-UVC light, where the band-pass filter transmits wavelengths between 200 nanometres or about 200 nanometres to 230 nanometres or about 230 nanometres, a sub-interval selected from an interval between about 200 nanometres to about 230 nanometres, or an interval comprising a wavelength of 222 nanometres or about 222 nanometres.
8. The pest repelling UV light emitting device according to claim 1, wherein the UV light emitting element is configured to emit coherent light obtained by sum-frequency generation.
9. The pest repelling UV light emitting device according to claim 1, wherein the UV light emitting element is or comprises a light source device, the light source device comprising at least one pump laser/pump source configured to emit light at a first predetermined wavelength, and an electromagnetic radiation frequency, or equivalent wavelength, converter, wherein a guiding module of the electromagnetic radiation frequency, or equivalent wavelength, converter is configured to receive and guide at least a part of the emitted light from the at least one pump laser light source, and an output light signal has a second predetermined wavelength different from the first predetermined wavelength.
10. The pest repelling UV light emitting device according to claim 9, wherein the electromagnetic radiation frequency, or equivalent wavelength, converter comprises a nonlinear optical component or part comprising or consisting of a predetermined nonlinear optical material, and the guiding module, the guiding module having a predetermined geometry defining or controlling an effective refractive index of the guiding module, and configured to receive and guide pump light resulting in a guided pump beam, and wherein the nonlinear optical component or part is bonded with or joined to the guiding module, where the bonding is configured to allow at least a part of the guided pump beam to overlap and/or evanescently couple into the nonlinear optical material, and configured to nonlinearly convert the guided pump beam in the nonlinear optical material to an un-guided signal mode radiated as an output light signal at a different frequency or an equivalent wavelength.
11. The pest repelling UV light emitting device according to claim 9, wherein the electromagnetic radiation frequency, or equivalent wavelength, converter comprises an optic coupler configured to receive light and provide it to the guiding module.
12. The pest repelling UV light emitting device according to claim 9, wherein the guiding module comprises at least one waveguide core and the nonlinear component or part is bonded with or joined to the at least one waveguide core of the guiding module.
13. The pest repelling UV light emitting device according to claim 9, wherein the guiding module comprises a substrate material, being different from the predetermined non-linear optical material, wherein the at least one waveguide core is arranged or deposited on a first side of the substrate material, or a substrate material, being different from the predetermined non-linear optical material, and cladding arranged or deposited on a first side of the substrate material and wherein the at least one waveguide core is arranged or deposited on a first side of the cladding.
14. The pest repelling UV light emitting device according to claim 9, wherein the nonlinear optical component or part and/or the guiding module comprises embedded electrodes and is configured to respectively change the effective refractive index of the nonlinear optical component or part and/or the guiding module in response to a respective change in applied electric field to the embedded electrodes.
15. The pest repelling UV light emitting device according to claim 9, wherein the converter comprises one or more planar optical structures configured to re-route and/or modulate light received or to be received by the guiding module thereby controlling the output light signal.
16. The pest repelling UV light emitting device according to claim 9, wherein the predetermined nonlinear optical material is one selected from the group consisting of: barium borate (BBO), cesium lithium borate (CLBO), lithium borate (LBO), potassium dideuterium phosphate (KDP), potassium dideuterium phosphate (DKDP), ammonium dihydrogen phosphate (ADP), yttrium calcium oxoborate (YCOB), and potassium fluoroboratoberyllate (KBBF).
17. The pest repelling UV light emitting device according to claim 9, wherein the guiding module is a guiding photonic integrated circuit.
18. The pest repelling UV light emitting device according to claim 9, wherein the at least one pump laser light source is configured to emit visible blue light and the output light signal is or comprises far-UVC light.
19. The pest repelling UV light emitting device according to claim 1, wherein the pest repelling UV light emitting device or the UV light-emitting element is configured to emit visible light in addition to far-UVC light.
20. The pest repelling UV light emitting device according to claim 1, wherein the pest repelling UV light emitting device is comprised by or combined with a patio heater or other outdoor heating unit, an outdoor regular lighting unit, or an indoor regular lighting unit.
21. A pest repelling UV light irradiation method comprising irradiating one or more pests, e.g. or in particular mosquitos, with far-UVC light emitted by a pest repelling UV light emitting device according to claim 1.
22. Use of a pest repelling UV light emitting device according to claim 1 to repel one or more pests by subjecting the one or more pests, e.g. or in particular mosquitos, to emitted far-UVC light, emitted by the pest repelling UV light emitting device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0087] Various aspects and embodiments of a pest repelling, killing, and/or damaging UV light emitting device and a pest repelling, killing, and/or damaging UV light irradiation method as disclosed herein will now be described with reference to the figures.
[0088] The shown figures are schematic representations for which reason the configuration of the different structures as well as their relative dimensions are intended to serve illustrative purposes only.
[0089] Some of the different components are only disclosed in relation to a single embodiment of the invention, but are meant to be included in the other embodiments without further explanation.
[0090]
[0091] Illustrated is one embodiment of a pest repelling, killing, and/or damaging UV light emitting device 100 as disclosed herein. The device 100 comprises a housing 200 comprising a suitable power source 105 (e.g. one or more rechargeable and/or replaceable batteries and/or solar panels), a control element 110 configured to output a control signal 111, one or more user interface elements 120, and a UV light emitting element 115.
[0092] The UV light emitting element 115 is configured to emit far-UVC light 125 in response to the control signal 111, and in at least some embodiments, the control element 110 is configured to output the control signal 111 in response to one or more signals 121 provided by or obtained from the one or more user interface elements 120. The one or more user interface elements 120 may e.g. be a simple on/off switch or similar providing a simple on/off signal to the control element 110, which in turn may provide an on/off control signal 111 to the UV light emitting element 115.
[0093] As disclosed herein, far-UVC light 125 will efficiently repel, kill, and/or damage one or more pests like insects, arachnids, or other pests (and in particular mosquitos) irradiated by the emitted far-UVC light 125.
[0094] In some embodiments, the UV light emitting element 115 is configured to emit far-UVC light 125 comprising or having a peak wavelength selected from about 200 nm to about 230 nm. In some additional embodiments, the emitted far-UVC light 125 comprises or has a wavelength or peak wavelength of 230/about 230 nanometres or less. In some further embodiments, the emitted far-UVC light 125 comprises or has a wavelength or peak wavelength selected from 210/about 210 nanometres to 225/about 225 nanometres. In some further embodiments, the emitted far-UVC light 125 comprises or has a peak wavelength of 222 nanometres or about 222 nanometres.
[0095] In some embodiments, the UV light emitting element 115 is or comprises at least one far-UVC LED (light emitting diode) 115, at least one far-UVC field emission device (FED) 115, and/or at least one far-UVC laser 115. In some embodiments, the UV light emitting element is configured to emit coherent light obtained by sum-frequency generation.
[0096] In some embodiments, the UV light emitting element 115 is a far-UVC excimer lamp 115.
[0097] Alternatively, the UV light emitting element 115 is or comprises another type of far UVC light emitting element.
[0098] In some further embodiments, the pest repelling, killing and/or damaging UV light emitting device 100 or the UV light emitting element 115 comprises an optical band-pass filter configured to filter the far-UVC light 125, where the band-pass filter is configured to transmit wavelengths between 200 nm to 230 nm or between about 200 nm to about 230 nm. Alternatively, the band-pass filter is configured to transmit wavelengths of a sub-interval selected from the interval between about 200 nm to about 230 nm. As yet another alternative, the band-pass filter is configured to transmit a wavelength of an interval within a predetermined range of a wavelength of 222/about 222 nm or of a different suitable wavelength (e.g. 210/about 210, 224/about 224, etc.).
[0099] The band-pass filter may be post emission or pre emission of the far-UVC light 125, i.e. the band-pass filter may be built-in or included with the UV light emitting element 115 (i.e. pre) whereby the UV light emitting element 115 will emit far-UVC light 125 after application of the band-pass filter or the band-pass filter may be located in the device 100 in the propagation path of far-UVC light 125 emitted by the UV light emitting element 115 (i.e. post) prior to or when exiting the device 100.
[0100] In some embodiments, the UV light emitting element 115 is or comprises a light source device as illustrated and explained in connection with
[0101] In some further embodiments, the frequency converter comprises [0102] a nonlinear optical component or part (see e.g. 1 in
wherein the nonlinear optical component or part is [0106] bonded with or joined to the guiding module, where the bonding is configured to allow at least a part of the guided pump beam to overlap and/or evanescently couple into the nonlinear optical material, and [0107] configured to nonlinearly convert the guided pump beam in the nonlinear optical material to an un-guided signal mode radiated as an output light signal (12) at a different frequency or an equivalent wavelength.
[0108] In some further embodiments, the frequency converter comprises an optic coupler (see e.g. 6 in
[0109] Additional embodiments of the light source device (as illustrated and explained in connection with
[0110] In some embodiments, the power supply 105 is configured to provide electrical power to any other element requiring electrical power, such as the control element 110 and the UV light emitting element 115 and e.g. the one or more user interface elements 120 (or one or some thereof).
[0111] In some further embodiments, the pest repelling, killing, and/or damaging UV light emitting device 100 as described above and/or herein is comprised by or combined with a patio heater or other outdoor heating unit, an outdoor regular, i.e. non-UV, lighting unit, an indoor regular, i.e. non-UV, lighting unit, a speaker unit, a wireless network device, and/or any combinations thereof.
[0112] In some embodiments, the pest repelling, killing, and/or damaging UV light emitting device or the UV light-emitting element is configured to emit visible light in addition to far-UVC light. The visible light (emitted in addition to the far-UVC light) may e.g. be blue, red, or any other suitable visible light.
[0113] An aspect relates to a use of a pest repelling, killing, and/or damaging UV light emitting device 100 as described above and/or herein.
[0114] A further aspect relates to a pest repelling, killing, and/or damaging UV light irradiation method, the method comprising irradiating one or more pests (e.g. mosquitos) with far-UVC light 125 emitted by a pest repelling, killing, and/or damaging UV light emitting device 100 as described above and/or herein.
[0115]
[0116] A series of tests have been carried out using various embodiments of a pest repelling, killing, and/or damaging UV light emitting device and method as disclosed herein.
[0117] The illustrated data (
[0118] As readily can been seen from the data of graph 301 (comparing the feeding inhibition % for no UV light and UV light, respectively), a strong inhibition of feeding was observed in the case with UV light strongly supporting a repellent effect of the UV light emitting device. Likewise, it can readily be seen from the data of graph 302 (comparing the mortality in % of fed mosquitos for no UV light and UV light, respectively), a significantly higher mortality rate was observed for mosquitos that did feed during the test for the case with UV light. In the situation with no UV light, no dead mosquitos were detected while a mean of 55% mortality rate of fed mosquitos were determined with UV light.
[0119] The illustrated feeding inhibition in % is the number (in %) of non-feeding mosquitos in relation to the total number of mosquitos.
[0120] The illustrated mortality in % of fed mosquitos is the number (in %) of dead mosquitos compared to the number of mosquitos determined to have been feeding during the test. Mosquitos having fed would necessarily have been feeding on the guinea pig (in the absence of other mammals to feed on) bringing the feeding mosquitos within the vicinity and thereby under the effect of the UV light emitting device.
[0121] Accordingly, it can be seen that the presence of the UV light emitting device has a significant repelling effect as well as a pest or mosquito killing effect.
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[0123] The illustrated data (
[0124] The results show that mosquito activity and presence in the outdoor veranda increased from low numbers (1-2) before sun down to much higher numbers (30-40) shortly after sundown (
[0125] This test demonstrates that the far-UV light emitting device of the present invention is effective in deterring/repelling mosquitos including the malaria-bearing Anopheles gambiae but also other types such as Aedes and Culex species.
[0126] These findings have important implications the UV light emitting device and method of the present invention as it provides a pesticide-free and eco-friendly means of preventing spread of malaria as well as of other vector born infections such as Zika, Yellow Fever, West Nile Fever, and Dengue. The lamps can be placed to secure human residence, hospitals and more to prevent exposure of humans to these disease-carrying mosquitos. Additionally, this approach has strong ecological advantages when compared to strategies where insecticides are used to kill of mosquitos.
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[0134] Such a light source/lighting device 18 (and variants and embodiments thereof as disclosed herein) is particularly efficient as a UV light emitting element (see e.g. 115 in
List of Reference Numerals
[0135] 1. Nonlinear material e.g., BBO [0136] 2. Waveguide core e.g., SiN [0137] 3. Surrounding cladding material e.g., Air [0138] 4. Bottom cladding material e.g., SiO2 [0139] 5. Substrate material of the guiding module e.g., Si [0140] 6. Spot size converter/combiner on a PIC [0141] 7. Length of the waveguide [0142] 8. Thickness of the waveguide core [0143] 9. Width of the waveguide core [0144] 10. Cherenkov angle [0145] 11. Pump beam [0146] 12. Signal beam [0147] 13. First diode laser pump/(first) laser light source [0148] 14. Laser diode active material [0149] 15. Laser diode substrate material [0150] 16. TO-can [0151] 17. Frequency converter [0152] 18. Light source/light source device [0153] 19. Optical mode profile [0154] 100. Pest repelling, killing, and/or damaging UV light emitting device [0155] 105. Power supply [0156] 110. Control element [0157] 111. Control signal [0158] 115. UV light emitting element [0159] 120. User interface (UI) element(s) [0160] 121. One or more UI element signals [0161] 125 Emitted UV light (far-UVC) [0162] 200. Housing
[0163] Some preferred embodiments have been shown in the foregoing, but it should be stressed that the invention is not limited to these, but may be embodied in other ways within the subject matter defined in the following claims.
[0164] It should be emphasized that the term comprises/comprising when used in this specification is taken to specify the presence of stated features, elements, steps or components but does not preclude the presence or addition of one or more other features, elements, steps, components or groups thereof.
[0165] In the claims enumerating several features, some or all of these features may be embodied by one and the same element, component or item. The mere fact that certain measures are recited in mutually different dependent claims or described in different embodiments does not indicate that a combination of these measures cannot be used to advantage.
[0166] In the claims, any reference signs placed between parentheses shall not be constructed as limiting the claim. The word comprising does not exclude the presence of elements or steps other than those listed in a claim. The word a or an preceding an element does not exclude the presence of a plurality of such elements.
[0167] The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to an advantage.
[0168] It will be apparent to a person skilled in the art that the various embodiments of the invention as disclosed and/or elements thereof can be combined without departing from the scope of the invention as defined in the claims.