See how screen-printing and inkjet processes create flexible phased-array antennas on fabric su
RFID antenna and tag placement lets product containers self-identify on modular processing assemblies, easing reconfiguration and inventory tracking.
V-shaped patch groups on a main feeder widen millimeter-wave radar 3 dB beamwidth while keeping sidelobes low and antenna size compact.
Interleaved Tx/Rx antenna arrays with metal isolation pillars and tuned dielectric layers cut FDD interference, point errors, and grating lobes.
Dual-fed transmission parts capacitively couple to a display-panel patch antenna, widening bandwidth while fitting tight module space.
A ground-plane parasitic element layout broadens zenith-centered beamwidth, boosts horizon gain, and avoids added loading components.
A radio frequency switch lets one lens antenna alternate between wide-beam scanning and narrow-beam communication to improve coverage and detection.
A feed antenna, surrounding loop, and outer resonator cover 5 GHz and 2 GHz bands while keeping the antenna compact and improving gain.
Dual radiation areas and ground-feed coupling broaden vehicle PCB antenna bandwidth and improve transmission efficiency in harsh environments.
A metal plate added to the antenna base tunes roof-induced resonance, preserving gain while avoiding multiple metal base variants.
A closed-loop antenna with meandering elements and coupled slots expands mobile bandwidth from 617 MHz to 5925 MHz while improving impedance matching.
A slit-defined ground arm extends effective antenna length to support low-frequency bands without degrading mid- and high-band performance.
Multiple coupled radiation elements and a ground protrusion expand compact antenna bandwidth across 2.4 GHz and 5 GHz WLAN bands.
Offset flat electrodes and vias improve loop antenna impedance matching while preserving isolation in concentric multi-frequency layouts.
Separate planar substrates replace a bent dielectric structure to cut antenna height while preserving strength and multi-direction radiation.
A bent slitted loop antenna excites common and differential modes from one feed to widen bandwidth and improve isolation in compact devices.
By placing a dielectric radiator in a metal frame fracture, this case improves millimeter-wave radiation without extra housing openings.
Physically separated transmit and receive CPAs achieve on-frequency isolation for full-duplex, multi-band links without large duplexers.
A transparent mesh grid antenna removes the radome and uses capacitive coupling to keep wideband coverage while staying nearly invisible.
Active or cloaked directors narrow azimuth beamwidth in low-band base station antennas, boosting directivity without increasing antenna width.
Helically wound conductive strips with quadrature feed create circularly polarized isoflux coverage for more uniform LEO signal strength.
Separate chassis antennas and notch filters let an HMD share a common ground plane, cutting RF switches, weight, cost, and interference.
Resonant inductor structures cloak the low-band dipole from high-band RF coupling, preserving compact multiband antenna layout and gain patterns.
Asymmetric ground-electrode geometry tilts multi-band antenna radiation to reduce overlap and widen emission coverage in compact devices.
A display shield doubles as a multiband antenna, using grounding and tuning circuits to limit body detuning while saving space in wearables.
A multilayer RF-transparent, IR-reflective roof structure shields vehicle antenna electronics from solar heating while preserving signal transmission.
A terminal-free low-frequency feed layout cuts antenna wiring space and improves intermodulation stability while maintaining gain and VSWR.
A suspended parasitic branch cancels coupling currents in compact terminal antennas, improving isolation and extending coverage into medium bands.
Broadband conductive patterns and coaxial-ground overlap improve transparent vehicle antenna efficiency while preserving glass transparency.
Thin-slit bezel antenna integration improves side-surface beam coverage and multi-band operation without compromising device appearance.
Multiple radiation elements and a capacitive link widen mobile antenna coverage from 2.4 GHz to 7.125 GHz while preserving isolation.
Vertical and horizontal choke members with meander lines suppress radiator coupling, preserving beamwidth and isolation in compact base station antennas.
Vertical separation between mmWave and Sub-6G antenna groups cuts interference and saves space in compact mobile terminals.
Inclined bridge-connected MED posts add loop resonances to widen impedance bandwidth while keeping radiation patterns stable and gain flat.
A parasitic radiator cancels induced dipole current in another band, cutting multi-band antenna scattering while preserving matching and beam tuning.
A recessed, inclined planar antenna lets aeronautic ground lights transmit RF data through a conductive housing while preserving sealing and impact protection.
A stacked patch and aperture-fed structure uses separated feed lines, vias, and dielectric gaps to widen bandwidth and limit coupling in compact arrays.
A suspended conductor and crossed dipoles create four resonances, improving impedance matching and port isolation across Wi-Fi bands.
A cavity antenna in the sliding housing preserves signal reception as a flexible display extends and retracts.
A dual-radiator feed layout excites multiple resonance modes to widen band coverage in space-limited mobile devices while limiting coupling.
Sequentially timing grouped terahertz wave elements cuts peak power draw and interference while preserving measurement accuracy.
Metamaterial adjusting elements reflect scattered low-band radiation to cancel coupling and preserve mid-band antenna patterns.
A ceramic frame surrounded by plastic cuts electronic housing weight while preserving strength, thin walls, and removable battery cover assembly.
A heatsink cable channel and blind-mate interconnects simplify scalable 5G radio cabling while reducing PIM and EMI.
A single-substrate antenna switches patches and floating patches between mmWave and UWB modes to save space and cut routing losses.
Multiple nested radiation elements widen antenna coverage from low to high bands while preserving compact size, isolation, and MIMO support.
Reactive-loaded dipole segments let a low-band antenna sit in front of a high-band antenna with minimal pattern disturbance and compact packaging.
A patch-slot PCB layout with a coupled metal cavity enables compact dual-band operation while reducing mutual interference and wall effects.
Voltage-tuned liquid crystal layers adjust dielectric constant and reflective phase to vary antenna frequency and beam pointing.
Switched filter banks and high-linearity RF paths let one access point handle asynchronous 5 and 6 GHz traffic with less distortion and jamming.
Placing a sub-6 GHz antenna in the mmWave near field broadens and steers coverage while conserving device space and limiting interference.
Centrosymmetric dipole arms with built-in filtering suppress harmonics while saving space and preserving high-frequency antenna performance.
A multilayer slot-wall antenna structure cuts side radiation and element interference while improving mmWave bandwidth, gain flatness, and efficiency.
A dual-radiator antenna layout reduces display-induced RF interference and attenuation by tuning spacing and capacitive coupling inside the housing.
A slotted metal antenna with nested radiation elements and a tuning circuit expands mobile bandwidth from 617 MHz to 6000 MHz in a compact layout.
A capacitive-loaded wearable antenna uses conductive and ground connections to cover Bluetooth, Wi-Fi, and UWB in one compact structure.
Reconfigurable conductive antenna shapes separate transmit and receive paths to improve non-invasive analyte detection accuracy.
UWB ranging identifies nearby IoT devices and matches executable apps from supported protocols, improving access without prior device knowledge.
Alternating antenna elements and individual ground planes improve isolation, reduce RF interference, and extend multi-band coverage in compact devices.
A closed-loop antenna layout expands 2.4-7.125 GHz bandwidth in compact mobile devices while resisting performance loss near metal elements.
A feed line spanning the substrate and antenna member avoids breakage at acute bends while supporting dual-direction radiation in compact devices.
A patch-over-aperture structure with dual feed lines and vias expands bandwidth, supports dual polarization, and limits feed coupling in compact mmWave arrays.
Hot-melt fixing of an integrally formed radiation and feed structure simplifies antenna assembly, cuts weight, and reduces antenna loss.
Switchable short paths and tuned housing antenna segments improve multi-band coverage in compact electronics while limiting antenna interference.
Closely spaced antenna elements use shared grounding and isolators to cut interference while preserving radiation in a compact layout.
Transparent antennas on vehicle glass use slot patterns and separated Wi-Fi/BT layout to cut interference, radiation loss, and module size.
Symmetric conductive plates and connections simplify resonance tuning while improving gain, element isolation, and manufacturing stability.
Segmenting the conductive hinge side member with dielectric gaps preserves antenna electrical length and stable frequency band matching in foldables.
A split-ring main antenna with an added radiation element creates multiple resonances, extending frequency coverage without separate antennas.
Multiple coupled dipole elements with different half wavelengths keep UHF RFID inlays matched across varying material permittivity.
A metal support and fasteners route antenna signals around side-key modules, adding antennas in tight smartphone frames without interference.
Distinct antenna feed zones enable simultaneous transmit and receive paths, cutting space and avoiding separate antennas or duplexers.
Separating resonators from the radiator across substrate layers expands bandwidth and gain while avoiding extra FPCBs and pillars.
A fluid cavity and movable metal part use gravity and buoyancy to keep the antenna beam near vertical without complex phase-shift circuits.
A capacitor and inductor tune an annular slot antenna to cover GPS L1 and L5 bands in compact wearables using one structure.
A rear-housing parasitic patch antenna saves internal space while maintaining multi-band wireless coverage through coupled patches.
A meandering stamped metal antenna and shelving transmitter harvest RF power across varied device orientations with less beam-forming complexity.
Multiple spaced grounding portions create electric field null points that cut circuit coupling and improve earphone antenna efficiency.
A Franklin antenna with switchable radiation units and a serpentine inverter changes beam orientation while keeping omnidirectional coverage and simpler control circuits.
Multiple radiation portions and a via-linked substrate layout widen antenna bandwidth from 2.4 to 7.125 GHz while keeping mobile-device size compact.
A dual-pivot hinge places the mmW antenna array between joint lines to reduce blockage while a heatsink improves thermal dissipation.
A folded magnetoelectric and patch PCB antenna cuts array footprint while preserving wide bandwidth and symmetric dual polarization for wide-angle scanning.
Asymmetric radiators, a coupling slot, and a serpentine balun shrink dual-band antenna spacing while maintaining isolation and matching.
Multiple coupled radiation elements widen mobile antenna bandwidth from 791 MHz to 2690 MHz while keeping the structure compact and low cost.
An annular ground and lower-ground overlap layout improves radiation capacitance in stripline antenna substrates without increasing thickness.
A single radiator trace combines loop ground edge and tapered slot behavior to cover 2.4 GHz and 5 GHz bands in a compact antenna.
Varying feed line widths and spaced antenna elements reduce gain variation and keep 76-81 GHz radiation patterns consistent.
A planar tapered UWB antenna with an RF balun cuts vehicle antenna height while preserving multi-band wireless connectivity.
Planar helical AM-FM-DAB antennas and a perpendicular LTE 5G board cut interference while fitting a compact vehicle roof module.
Curved 3D antenna elements on a flexible circuit improve omnidirectional coverage while lowering port coupling in compact wireless devices.
Segmented conductive side frames and connection terminals keep sliding flexible-display antennas stable across multiple frequency bands.
A palm-rest antenna splits feed and grip sensing patterns to limit hand interference while maintaining reliable multi-band wireless links.
Wider wiring near the feeding unit lowers current-density damage and protective-layer separation while preserving board transparency.