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Title:
LAPTOP COMPUTER AS A TRANSMITTER FOR WIRELESS CHARGING
Document Type and Number:
WIPO Patent Application WO/2015/088877
Kind Code:
A1
Abstract:
Configurations and methods of wireless power transmission using a laptop computer may include a transmitter and/or a receiver embedded in the laptop screen. The embedded transmitter may emit RF waves for the generation of pockets of energy that may be utilized by receivers in peripheral devices for charging or powering. Meanwhile, the receiver embedded in the laptop computer may collect RF waves from a separate transmitter for charging or powering the laptop computer.

Inventors:
LEABMAN MICHAEL A (US)
BREWER GREGORY SCOTT (US)
Application Number:
PCT/US2014/068586
Publication Date:
June 18, 2015
Filing Date:
December 04, 2014
Export Citation:
Click for automatic bibliography generation   Help
Assignee:
ENERGOUS CORP (US)
International Classes:
H02J7/00; H02J17/00
Domestic Patent References:
WO2008156571A22008-12-24
WO2012177283A12012-12-27
Foreign References:
US20120274154A12012-11-01
US20130088192A12013-04-11
US20060113955A12006-06-01
US20070178945A12007-08-02
US20070191075A12007-08-16
Other References:
See also references of EP 3087650A4
Attorney, Agent or Firm:
FEMAL, Michael J. et al. (Suite 1800Chicago, Illinois, US)
Download PDF:
Claims:
Having thus described the invention, We claim:

1. A method for wireless power transmission to an electronic device from a coxnputer system, comprising the steps of:

embedding a pocket-forming transmitter in a screen display of the computer system;

transmitting power RF waves from ihe pocket- orming transmitter having a radio frequency integrated circuit, antenna..elements, a microprocessor and communication circuitry:

generating pockets of energy from the transmitter to converge in 3-d space at predetermined locations;

integrating a receiver having antenna elements and communication circuitry within the electronic device;

converting ihe pockets of energy from the transmitter to the integrated receiver to power the electronic device.

2. The method for wireless power transmission to an electronic device from a computer system of claim I, wherein the computer system is a laptop, notebook or nano- notebook.

3. The method for wireless power transmission to an electronic device from a computer system of claim L wherein the computer system is a desktop computer, a tablet, iPad, iPhone, smartphone or other peripheral portable electronic devices,

4. The method for wireless power transmission to an electronic device from a computer system of claim 1 , v herei tire computer system includes an embedded, receiver whereby a separate transmitter in proximity to the computer system powers the computer system while the transmitter of the computer system wirelessly charges the electronic device.

5. The method for wireless power transmission to an electronic device from a computer system of claim 4, further including Ihe step of switching between the transmitter and the receiver in the computer system.

S 3

6. The method for wireless power transmission to an electronic device from a computer system of ciaim 5, further including the step of controlling the switching by a software algorithm.

7. The method for wireless power transmission to an electronic device from a computer system of claim 4, further including the step of using the same antenna elements for transmitting and receiving the power RF waves.

8. The method tor wireless power transmission to an electronic device from a computer system of ciaim ί , further including the step of synchronizing wirelessly with at least one peripheral electronic device used with the computer system and the step of powering the at least one peripheral electronic device.

9. The method for wireless power transmission to an electronic device from a computer system of ciaim 8, wherein the at least one peripheral electronic device includes computer mice, keyboards, smartphones, audio or visual headsets and other peripherals used with a computer system.

10. The method for wireless power transmission to an electronic device from a computer system of ciaim 1, wherein the transmitter is integrated between a LED/LCD back-light layer and a frame of the screen display.

1 1. The method tor wireless power transmission to an electronic device from a computer system of claim 4, further including the steps of selecting the separate transmitter within a predetermined charging range of the computer system; verifying a battery charge level of the computer system: charging the computer system; identifying peripheral devices within a predetermined range of the computer system transmitter for wirelessly charging the peripheral devices.

12. The method for wireless power transmission to an electronic device from a computer system of ciaim 1, wherein the wireless power transmission from the computer system allows seamless operation and wireless charging between at least one peripheral device and die computer system.

13. The method, for wireless power transmission to an electronic device from a computer system of claim 1 , wherein the computer system transmitter includes adaptive pocket-forming for dynamically adjusting pocket-forming to regulate power on the receiver of at least one peripheral electronic device within predetermined range of the transmitter through communication signals between the transmitter and rece ver communication circuitry,

14. The method for wireless power transmission to an electronic device from a computer system of claim 1 s wherein the electronic device includes peripheral devices used in conjunction with the computer system that include a receiver with, antenna elements for collecting the power RF waves for charging the peripheral devices.

15. The method for wireless power transmission to an electronic device from a computer system of claim 1, wherein the antenna elements of the transmitter and receiver operate in frequency bands of 900 MHz, 2,4 GHz, 5.8 GHz.

16. The method for wireless power transmission to an electronic device from a computer system, of claim 1 , wherein peripheral devices operate wirelessly with the computer system through Bluetooth communication between the communication circuitry of the transmitter and receiver.

17. The method for wireless power transmission to an electronic device from a computer system of claim 1 , wherein the antenna elements are facing out of the computer system screen, display to allow suitable transmission of power RF waves to the electronic device.

18. The method for wireless power transmission to an electronic device from a computer system of claim L wherein the screen display includes both, the transmitter and a receiver for providing charging to the computer system and charging to the electronic device by switching between the transmitter and receiver over the antenna elements of the computer system.

19. An apparatus for wireless power transmission to an electronic device from a computer system, comprising*.

a pocket-forming transmitter embedded in a screen display of the computer system having antenna elements, a RF circuit, a digital signal processor for controlling the RF circuit of the transmitter and communication circuitry connected to a power source of the corn puter system; power JF waves generated from the RF circuit in the transmitter to form pockets of energy;

a receiver embedded in the electronic device wife communication circuitry and antenna elements arranged in a predetermined amy for capturing the pockets of energy converging in 3-D space ai the receiver;

a battery connected to the receiver for wirelessiy charging the battery from the pockets of energy.

20. The apparatus for wireless power transmission to an electronic device from a computer system of claim 20, further including a receiver with communication circuitry integrated into the scree display wherein the transmitter and receiver simdtaneousiy receive and transmit power R F waves for charging the computer system through the receiver and for charging the electronic device through the transmitter whereby a software algorithm processed by the digital processor is used to control the switching between the transmitter and the receiver in the screen display using the same antenna elements for both, transmitting and receiving power RF waves through the respective communication circuitry utilizing Bluetooth, infrared, Wi-Fi, F radio or Zigbee signals for the various communication protocols between the receiver and the transmitter to regulate the charging of the computer s stem and the electronic device.

21 . The apparatus for wireless power transmission to an electronic device from, a computer system of claim 20. wherein the digital signal processor in the transmitter of the computer system controls the charging levels of a battery in die computer system to maintain suitable wireless minimum and maximum charging thresholds between computer battery charge levels of approximately 25% and 99% for charging the electronic device within a predetermined charging range before connecting the computer system to a standard 120/220 AC outlet whenever the computer battery level falls below the 25% battery threshold level.

Description:
TITLE

LAPTOP COMPUTER AS A TRANSMITTER FOR WIRELESS CHARGING

CROSS-REFERENCES TO RELATED APPLICATIONS

[0001] The present disclosure is related to U.S. non-provisional patent application

Nos. 13/891 ,430, filed May 10, 2013, entitled -'Methodology for Poeket-fomung"; 13/925,469 tiled June 24, 2013, entitled "Methodology tor Multiple Pocket-Forming"; 13/946,082 .filed July 19, 2013, entitled "Method for 3 Dimensional Pocket-forming"; 13/891,399, filed July 22, 2013, entitled "Receivers for Wireless Power Transmission"; md 13/891 ,445. .tiled July 22, 2013, entitled "Transmitters for Wireless Power Transmission",

FIELD OF INVENTION

[0002] The present disclosure relates in general to wireless power transmission, and more specifically to configurations and methods of wireless power transmission using a laptop or tablet computer.

BACKGROUND OF THE INVENTION

[0003] Laptop or tablet computers are often used in synchronization with several peripheral devices such as computer mice, keyboards, smartphones, headsets, and the like. I nese peripheral devices may include batteries tor allowing wireless operation with the laptop or tablet computer. However, when charge is depleted, the batteries in these peripheral devices may have to be replaced, or said peripheral devices may need to connect to the laptop computer for charging. This may produce tedious continuous connecting/disconnecting of peripheral devices for charging, and may also require the use of all available USB ports in the laptop computer.

[0004] What is needed are methods and systems for allowing continuous wireless charging and operation of peripheral devices that may operate in conjunction with a laptop or tablet computer,

SUMMARY OF THE INVENTION

[0005] Configurations and methods of wireless power transmission using a laptop or tablet computer are disclosed. According to an embodiment, a transmitter may be embedded in the laptop computer screen for transmitting RF waves towards one or more peripheral devices, where these RF waves may generate pockets of energy that may allow the wireless charging of one or more peripheral devices. These peripheral devices may include a receiver .for collecting and rising the transmitted RF waves. Examples of peripheral devices ma include headsets, computer keyboards and mice, srnartphones, and the like.

[0006] A method for wireless power transmission to an electronic device from a computer system, comprising the steps of: embedding a pocket rmiag transmitter in a screen display of the computer system; transmitting power RF waves, rom the pocket- forming transmitter having a radio frequency integrated circuit, antenna elements, a microprocessor and communication circuitry; generating pockets of energy from the transmitter to converge in 3-d space at predetermined locations; integrating a receiver having antenna elements and communication circuitry within the electronic device; converting the pockets of energy .from the transmitter to the integrated receiver to power the electronic device.

[00071 An apparatus ibr wireless power transmission to an electronic device from a computer system, comprising: a pocket-forming transmitter embedded in a screen display of the computer system having antenna elements, a RF circuit, a digital signal processor for controlling the RF circuit of the transmitter and communication circuitry connected to a power source of the computer sy stern; ower RF w es generated from the RF circuit in the transmitter to form pockets of energy; a receiver embedded in the electronic device with communication circuitry and antenna elements arranged in a predetermined array for capturing the pockets of energy converging in 3-D space at the receiver; a battery connected to the receiver for wirelessly charging the battery from the pockets of energy.

[0008] According to another embodiment the laptop computer may include both, a transmitter and a receiver, for simultaneously transmitting and receiving RF waves. In this case, laptop computer may be wirelessly charged by a separate transmitter in proximity, while the laptop computer may also wirelessly charge one or more peripheral devices within range. Yet in another embodiment s the laptop computer may include a single transmitter that can also be used as a receiver. In this case, a software algorithm may be used to control the switching using same antenna elements for transmitting or receiving h waves.

[0009] Laptop computer's screen may exhibit different configurations for integrating a transmitter or a receiver. In one embodiment, the transmitter may be integrated between the LED/LCD back-hgbi layer and the frame, while the receiver may be integrated along the edges ox the screen. Transmitter or receiver may be integrated in the front or back of the laptop screen as required by the application, using stand-alone components or shared screen components,

[0010] A method tor wireless power transmission using a laptop computer may include the steps of selecting the appropriate transmitter within range, verifying battery charge levels in laptop computer, identifying peripheral devices available and within range, pocket forming generation and wireless charging.

[001 1 ' { The disclosed systems and methods for wireless power transmission using a laptop computer may allow seamless operation and wireless charging between, one or more peripheral devices and the laptop computer, without the need of using physical cables or connections. Additional features and advantages can become apparent from the detailed descriptions which follow, taken in conjunction with the accompanying drawings,

BRIEF DESCRIPTION OF THE DRAWINGS

[001.2] The present disclosure can be belter understood by referring to the following figures. The components In the figures are not necessarily to scab, emphasis instead being placed upon illustrating the principles of the disclosure. In the figures, reference numerals designate corresponding parts throughout the different views.

[0013] FIG. 1 illustrates a wireless power transmission for charging one or more peripheral devices using a laptop computer.

[0014] FIG. 2 shows a component level embodiment for a transmitter that .may be embedded in laptop computer screen for the generation of wireless power transmission.

[0015] FIG. 3 depicts a component level embodiment of a receiver that may be embedded in peripheral devices or laptop computer for wireless powering or charging.

[001.6] FIG. 4 illustrates an exploded view of a laptop screen configuration that may be used in the wireless power transmission shown in FIG. 1.

[001 7] FIG. S shows art exploded view of another laptop screen configuration which may include both, a transmitter and a receiver.

[0018] FIG. 6 depicts an example of wireless power transmission where a laptop computer may use the laptop screen configuration shown in FIG. 5 for simultaneously receiving and transmitting RP waves.

[001 ] FIG. ? illustrates a simplified flowchart of a wireless power transmission process that may be implemented for charging one or more peripheral devices using a laptop computer,

DETAILED DESCRIPTION OF THE DRAWINGS

[0020| The present disclosure is here described in detail with reference to embodiments illustrated in the drawings, which form a part here. Other embodiments may be used and/or other changes may be made without departing from the spirit or scope of the present disclosure. The illustrative embodiments described in the detailed description are not meant to be limiting of the subject matter presented here.

[0021] Definitions

[0022] As used here, the following terms may have the following definitions:

[0023] n P©€-ket-fow5ii«g ?5 may refer to generating two or more RF waves which converge In 3-d space, forming controlled constructive and destructive interference , patterns..

[0024] "Pockets of energy may refer to areas or regions of space where energy or power may accumulate in the fo m of constructive interference patterns of RF waves,

[0025] "Nafikspaee" may refer to areas or regions of space where pockets of energy do not form because of destructive interference patterns of RP waves.

[0026] "TraBsiRifter" may refer to a device, including a chip which .may generate two or more RF signals, at least one RF signal being phase shifted and gain adjusted with respect, to other RF signals, substantially all of which pass through one or more RF antenna such that focused RF signals are directed to a target.

[002-7] "Receiver" may refer to a device including at least one antenna element, at least one rectifying circuit and at least one power converter, which may utilize pockets of energy for powering, or charging a electronic device.

[0028] "Adaptive ocket-formin '* may refer to dynamically adjusting pocket- forming to regulate power on one or more targeted recei vers.

[0029] '- Peripheral devices" may refer to electronics devices ox accessories thai can be used in conjunction with a laptop computer, where these electronics devices may include a receiver for collecting RF waves.

DESCRIPTION OF THE DRAWINGS

|0030 ' j FIG. 1 illustrates a wireless power transmission 100 for charging one or more peripheral devices using a laptop computer 102 or tablet, computer. Peripheral devices may include a headset 104, a keyboard 106, a mouse 10$, and a smartphone 110, among others. These peripheral devices may operate wirelessly with laptop computer 102 through. Bluetooth communication, and may include rechargeable batteries (not shown in FIG. 1).

[0031] A transmitter (not shown In FIG. 1) may be embedded in the laptop computer 102 screen to transmit controlled Radio Frequency (RF) waves 112 which may converge in 3-d space. These RF waves Π2 may be controlled through phase and/or relative amplitude adjustments to form constructive and destructive interference patterns (pocket-tbnning). Pockets of energy .1.14 may be formed at constructive interference patterns and can be 3 -dimensional in shape, while null-spaces may be generated at destructive interference patterns. A. receiver (not shown in FIG, I) embedded in each of the peripheral devices may then utilize pockets of energy 114 produced by pocket- forming for charging or powering the batteries in peripheral devices.

[0032] According to some aspects of this embodiment, laptop computer 102 may be connected to a conventional AC plug for charge its battery to suitable levels, while providing wireless power transmission to one or more peripheral devices.

[0033] FIG, 2 illustrates a component level embodiment for a transmitter 200 that may be embedded in laptop computer 102 screen for the generation of wireless power transmission 100. Transmitter 20 ) may include a. housing 282. at least two or more antenna elements 204 at least one RF integrated circuit (RFIC) 206. at least one digital signal processor (DSP) or micro-controller 208, and one communications component 210. Housing 202 can be made of any suitable material which may allow for signal or wave transmission and/or reception,, for example plastic or hard rubber. Antenna elements 204 may include suitable antenna types for operating in frequency hands such as 900 MHz, 2,4 GHz or 5.8 GHz as these frequency bands conform to Federal Communications Commission (FCC) regulations part 18 (industrial, Scientific and Medical equipment). Antenna elements 204 may include vertical or horizontal polarization, right, hand or left hand polarization, elliptical polarization, or other suitable polarizations as well as suitable polarization combinations. Suitable antenna types may include, for example, patch antennas with heights from about 1/8 inches to about 8 inch and widths from about 1/8 inches to about 6 inch. Other antenna elements 204 types can be used, for example meia-materials, dipole antennas among others. [0034] RFIC 206 may include a proprietary chip for adjusting phases and/or relative magnitudes of RF signals which may serve as inputs for antenna elements 204 for controlling pocket-fonning. These RF signals may be produced using a. power source 21.2 and a local oscillator chip (not shown) using a suitable piezoelectric material, Power source 21.2 may include the battery of laptop computer 102 which can be recharge using a conventional AC plug. II stag communications component 211), micro-controller 208 may process information sent by the receivers embedded in peripheral devices through for determining optimum times and locations for pocket-forming. Communications component 21.0 may be based on standard wireless communication protocols which may include Bluetooth, Wi-Fi or ZigBee, in addition, communications component 219 may be used to transfer other information such as a identifier for the device or user, battery level, location or other such information. Other communications component 2111 may be possible, including radar, infrared cameras or sound devices for sonic tri angulation of the device's position,

[0035 j FIG. 3 illustrates a component level embodiment for a receiver 300 that may be embedded in peripheral devices or laptop computer .102 for wireless powering or charging. Receiver 3 10 may be integrated, in peripheral devices and may include a housing 302 where at least one antenna element 304, one rectifier 306, one power converter 308 and a communications component 310 may be included. Housing 302 can be made of any suitable material which may allow fox signal or wave transmission and/or reception, for example plastic or hard rubber. Housing 3112 may be an external hardware that may be added to different electronic equipment, for example in the form of cases, or can be embedded within electronic equipment as well, Antenna element 304 m y include suitable antenna types for operating in frequency bands similar to the bands described for transmitter 200 from FIG, 2. Antenna element 304 may include vertical or horizontal polarization, right hand or left hand polarization, eUiptical polarization, or other suitable polarizations as well as suitable notarizat on combinations. Using multiple polarizations can be beneficial in peripheral devices where there may not be a preferred orientation during usage or whose orientation may vary continuously through time, for example smartphone 110. On the contrary, for devices with well-defined orientations, for example keyboard 106, there might be a preferred polarization for a tennas which may dictate a ratio for the number of antennas of a given polarization. Suitable antenna types may include patch antennas with heights from about 1/8 inches to about 6 inch, and widths from about 1/8 inches to about 6 inch. Patch antennas may have the advantage that polarization may depend on connectivity, i.e. depending on which side the patch is fed, the polarization may change. This may further prove advantageous as receiver 300 may dynamically modify its antenna polarization to optimize wireless power transmission 100,

[0036] Rectifier 306 may include diodes or resistors, inductors or capacitors to rectify the alternating current (AC) voltage generated by antenna element 304 to direct current (DC) voltage. Rectifier 306 may be placed as close as is technically possible to antenna element 304 to minimize losses. After rectifying AC voltage, DC voltage may be regulated using power converter 368. Power converter 308 can be a DC-DC converter which may help provide a constant voltage output to charge the batteries 312 of peripheral devices. Typical voltage outputs can be from about 5 volts to about 1.0 volts. In some embodiments, power converter 308 may include electronic switched mode DC-DC converters which can provide high efficiency, in such a. case, a capacitor (not shown) ma be included before power converter 308 to ensure sufficient current is provided. Lastly, a communications component 310, similar to that of transmitter 200 from FIG. 2. may be included in receiver 300 to communicate with a transmitter 200 or to other electronic equipment.

[0037] FIG, 4 illustrates an exploded view of a laptop screen configuration 400 used m wireless power transmission 100, In this particular laptop screen configuration 400, transmitter 2110 may be embedded in laptop computer 102 for the transmission of RF waves 112 towards one or more peripheral devices, as shown in FIG. 1.

[0038] Laptop computer 102 screen may be formed of different layers, inducting a front transparent screen layer 402, a polarized film layer 404, a LED/LCD back-light layer 406 " ,, and a frame 408. According to some aspects of this embodiment, transmitter 200 may be integrated in laptop computer 102 screen, specifically between LED/LCD back-light layer 406 and frame 408, As shown in FIG. 4, transmitter 200 may include a plurality of antenna elements 204 feeing out of laptop computer Ϊ02 screen. This configuration of antenna elements 204 may allow suitable transmission of RF waves .112 towards peripheral devices that may be located in front of laptop computer 102 screen. In other embodiments, transmitter 200 may be embedded in the circuitry elements or metal mesh (touchscreen versions) of laptop computer 102 screen.

[0039] FIG. 5 shows an exploded view of another laptop screen configuration

500 where laptop computer 192 screen may include both, transmitter 200 and receiver 300, fo providing and receiving wireless charging.

[0040] Similarly as in FIG. 4, laptop computer 102 screen may be formed of different layers, including front transparent screen layer 4112, polarized film layer 404, LED/LCD back-light layer 406, and frame 408. According to some aspects of this embodiment, transmitter 20(1 may he integrated between LED/LCD back- light layer 406 and frame 408, while receiver 300 may be integrated along frame 408. As shown in FIG, 5, antenna elements 204 of transmitter 201! may be pointing out of the screen, while antenna elements 304 of receiver 300 may be embedded, around the edges of frame 408 for allo wing the reception of RF waves 112 from RF waves 112 sources or transmitters at different locations.

[004.1 ] The location and configuration of transmitter 200 and receiver 300 in laptop computer 102 screen may vary according to the application. For e m le;, in one embodiment, receiver 300 may be configured in the middle of the back of frame 408 and raay include high directional antenna elements 394 that can be oriented towards a transmitter in proximity to laptop computer 102 for receiving suitable wireless charging. In another embodiment,, laptop computer 102 screen may include a single transmitter 200 thai may also operate as a receiver 300, in which case, transmitter 200 may use same antenna elements 204 for transmitting and receiving RF waves 112. That is. transmitter embedded in laptop computer 102 screen may switch between those antenna elements 204 receiving RF waves 112 for charging the battery of laptop computer 102 or transm.itf.ing RF waves 1 12 for charging the batteries in peripheral devices. An algorithm processed at micro-controller 2 8 may be used to control the switching between transmitting and receiving RF waves 112 using same antenna elements 204. [0042] FIG. 6 shows another example of wireless power transmission 68 where laptop computet 102 ma use laptop screen configuration SIM! for simultaneously receiving and transmitting RF waves .1.12,

[0043] According to some aspects of this embodiment, one or more separate transmitters 602 may direct RF waves 112 towards the edges of laptop computer 102 screen where antenna elements 304 of receiver 300 may be integrated (not shown in WIG. €), Consequently, pockets of energy 114 may be captured by antenna elements 304 and utilized by the receiver 3Θ0 to charge the battery of laptop computer 102, Simultaneously, transmitter 200 (not shown in FIG, 6), also nb&dd&d in laptop computer 102, may direct RF waves 112 towards one or more peripheral devices.

[0044] Transmitter 602 may exhibit similar configuration as transmitter 200 shown in FIG.. 2, However, transmitter 602 may exhibit a larger footprint as it may not be limited by the size of a computer screen, and it may also include a higher amperage power source 212 such as a standard 120/220 volts AC hous connection compared to transmitter 200 which may obtain power from the battery of laptop computer 1.02, This may allow transmitter 602 to have a wider wireless charging range compared to transmitter 200.

[0045] Peripheral devices such as headset 104, keyboard 106, mouse 1 )8, and smartphone 110 may he wirelessly charged by RF waves 112 emitted from transmitter 200 m laptop computer 102. In addition, these peripheral devices may also be wirelessly charged directly by RF waves 112 emitted from one or more transmitters 02 in proximity to laptop computer 102. In this case, an algorithm processed at microcontroller 208 may coordinate the operation between transmitter 200 embedded in laptop computer 102 screen and transmitter 602 positioned on the room walls. For example, this algorithm may decide which transmitter, transmitter 200 or transmitter 602, should be sending RF waves 1.1.2 to wirelessly charge peripheral devices., depending on the proximity and/or energy levels of die battery in laptop computer 102, in one embodiment, both, transmitter 200 and transmitter 602, may simultaneously direct RF waves 112 towards peripheral devices for increasing po wer transfer, if required by the application. [0046] FIG, 7 shows a simplified flowchart of a wireless power transmission process 701} that may be implemented for charging one or more peripheral devices using laptop computer 102, This process may be applicable to the embodiments of wireless power transmission 100, 600 shown in FIG. .1 and FIG, 6.

[0047] Wireless power transmission process 700 may begin by selecting one or more transmitters in range, at block 702. One or more peripheral devices may require wireless charging, in which case, one or more transmitters 602 in the room, or transmitter 201) embedded in laptop computer 162 may be selected if they are widhn a suitable range. For example, if smarf.ph.one 110 is not within a suitable charging distance from laptop computer 102 (e.g. not i.e. the table), then the higher power transmitter 612 may he selected for providing wireless charging. According to some embodiments, wireless charging distance for transmitter 200 in laptop computer 11)2 may be optimized within a range of about 1 to 3 meters; if peripheral devices are outside this range, then they can be wirelessi charge by transmitter 602,

[0048] Laptop computer 102 may also include a software application that may provide inibrmalion about, the distance, charging levels, efficiency, location, and optimism positioning of laptop computer 102 with respect to peripheral devices and transmitter 602.

[0049] After selecting the transmitter -within the optimal charging range, wireless power transmission process 7611 may continue by checking the charge levels of the battery in laptop computer 102, at block 704. This check may be performed by a control module included in laptop computer W2 (not shown in FIG. I and FIG, 6) or by microcontroller 208 in transmitter 200, Different charging levels for the battery in laptop computer 102 may be established for maintaining suitable wireless charging. For example, minimum and maximum charging thresholds may be established at about 25% and 99% of total charge respectively. That is, if battery charge is below the minimum threshold or 25%, then laptop computer 102 can be connected to a standard 120/220 AC volts outlet or it may receive wireless charging from transmitter 602. When battery charge is at 99% or at least above 25%, laptop computer 102 may transmit RF waves 112 for charging one or more peripheral devices in range.

I S [0050] Wireless power transmission process ' /t ll may continue at block 706, where communications component 210 in transmitter 200 or transmitter 602 may identify one or m re peripheral devices thai may require wireless charging. Charging or powering priorities and other parameters such as power intensity and pocket-forming focus/timing rnay be established using a control .mod.uie included in laptop computer 102 (not shown in FIG, 4 and FIG, 5) or micro-controller 20$ in transmitters 200, 602, For example, based on charging or powering priorities, transmitter 200 or transmitter 602 may be configured to first provide wireless charging to mouse 1118, followed by keyboard 106, and lastly to e dsets 104,

[0051] After peripheral are identified and charging priorities/parameters in transmitter 200 or transmitter 61)2 are set, transmission of RF waves 112 towards the designated peripheral devices can begin, at block 70S. where these RF waves 112 may generate pockets of energy 114 at receivers 300 for powering or charging one or more peripheral devices, sequentially or simultaneously.

[0052] Using communications component 210, transmitter 2111) embedded in laptop computer 102 or transmitter 602 on the waif may continuously check if there are other peripheral devices that rnay require wireless charging or powering, at block 710. If new or additional peripheral devices are identified, then transmitter 200 or transmitter 602 may wirelessly charge the identified peripheral devices according to the established charging priorities, optimum ranges, battery levels and/or other parameters. If no further peripheral devices are recognized or need wireless charging, then wireless power transmission process 700 may nd

[0053] While various aspects and embodiments have been disclosed, other aspects and embodiments are contemplated. The various aspects and embodiments disclosed are for purposes of illustration and are not intended to be limiting, with the true scope and spirit being indicated by the following claims.