A single orthogonally polarized feed replaces dual spatial MIMO ports, improving polarization reception while simplifying antenna layout.
Selective switching between side and bottom frame feed points helps limit body-induced signal loss while balancing free-space and handheld radiation.
A shell-conformal folded antenna improves ear-to-ear hearing communication by preserving radiation efficiency, impedance matching, and left-right symmetry.
Overlapping wide and narrow half-wave conductors improve current distribution and suppress radiation loss near metal in wireless devices.
A transparent metasurface above the display boosts millimeter-wave antenna bandwidth, gain, and radiation efficiency in thin mobile devices.
A four-element antenna layout preserves radiation efficiency by overlapping the speaker body selectively and routing the cable away from the antenna.
A 3D slot in the metal frame bridge expands UWB radiation space and improves isolation between adjacent antennas in tight device layouts.
A tuned handheld probe and RF filtering isolate PIM from downlink signals, helping technicians locate external interference sources faster.
Two coupled radiation structures split low and mid-high band operation to maintain antenna performance while lowering SAR near the user's head.
An asymmetric radiator with breaks on curved and flat edges shifts low-band radiation away from tight clearance to improve coverage.
Overlapping beams from nested low- and high-band antennas cut connection delay while preserving fast data transfer in compact electronics.
Orthogonal dipoles, balun grounds, and open stubs add suppression zero points to cut mutual coupling and improve base station filtering.
A thicker first radiation conductor resists insulating resin stress, preventing antenna deformation and preserving radio communication characteristics.
A frequency selective panel separates low- and high-frequency units to prevent pattern distortion, widen bandwidth, and shrink antenna height.
Beam-steering indoor nodes capture weak VHF/UHF TV signals and redistribute them as Wi-Fi to improve in-building coverage and reliability.
Dielectric-filled frame gaps turn a headset rim into segmented antennas, enabling 600 MHz-6 GHz wireless coverage without blocking cooling airflow.
Switchable RF paths adjust antenna impedance to limit coupling interference in overlapping antennas and preserve low- and mid-band performance.
RF chokes in segmented low-band dipoles block induced high-band currents, preserving radiation patterns in wideband basestation antennas.
Metal temple structures double as antenna grounds and elements, enabling multi-band smart glasses antennas without losing strength or heat dissipation.
Rear-mounted radios and relocated RF ports reduce connector crowding, simplify field replacement, and lower cable loss in base station antennas.
Three concentric square slots and an integrated microstrip feed cut antenna coupling while covering sub-6 GHz and 28 GHz bands for compact 5G IoT use.
Embedded liquid crystal phase shifters in a multistage feeding network cut signal loss, volume, and power in scalable phased array antennas.
Parallel acoustic resonators dynamically tune PA load-line impedance to cut reflection and insertion loss in wireless transmit circuits.
A glass-mounted antenna with a dielectric spacing layer improves zenith circularly polarized signal reception without a roof antenna case.
A trap using capacitors and inductors lets a printed inverted-F antenna separate dual bands under 100 MHz apart with better sensitivity.
A PCB inverted-F antenna uses a trap across an element gap to separate dual bands under 100 MHz apart with less overlap and tolerance sensitivity.
A shared conductive feed uses direct contact and gap coupling to support multiple bands in tight housings while improving high-frequency radiation.
Capacitor and inductor links between antenna conductors enable low- and high-band communication without increasing antenna size.
Self-contained antenna sub-modules cut multi-band design and test time by enabling parallel fabrication, calibration, and reconfiguration.
By moving the antenna below the defogger and shaping the light-shield region, this window glass layout shortens wiring and broadens radio reception.
Separate antennas in each wearing member and a frame-based connector improve smart glasses RF coverage while reducing signal loss.
Branched parasitic elements help a display antenna array improve gain, dual polarization, and stable 10-40 GHz multi-band radiation.
Switchable radiation and impedance elements extend antenna coverage from 700 MHz to 5000 MHz without increasing device size.
A multilayer PCB antenna uses capacitive coupling and edge return connection to extend low-profile DAS coverage into the VHF band.
A phased mix of directional and omnidirectional vehicle antennas boosts gain while filling shadowed coverage nulls for stable all-angle communication.
Shared and segmented ground wires create orthogonally complementary currents, improving isolation between closely spaced mobile terminal antennas.
Symmetrical gaps in the ground and radiation layers create high- and low-frequency radiation zeros for 5G filtering without extra loss.
Capacitive links between three conductor groups create an artificial magnetic conductor effect that cuts reflections while preserving broadband radiation efficiency.
Interleaved dual-polarized elements support separate mmWave bands in a compact array, improving scan performance while limiting coupling and grating lobes.
Angled capacitance loading elements and a helical element cut floating capacity and antenna interference while preserving AM/FM gain in a low roof profile.
A coupled feed-in electrode and grounded branch simplify multi-band antenna feeding while improving impedance matching and circular polarization.
Meander paths and a single lumped inductor shrink a 434 MHz hyperthermia antenna while maintaining impedance matching and stable radiation.
A transparent interface and connector subassembly links flexible antennas to RF hardware without high-temperature soldering or visible opaque joints.
Metamaterial cloaking and dielectric loading shrink low-band dipole elements while limiting mid-band beam interference in base station antennas.
Fixed phase differences across parallel feed branches cancel PIM from semiconductor modules, improving base station uplink performance and layout simplicity.
A split ring resonator with multiple radiation elements enables one antenna to resonate across multiple operating frequencies.
Using separate antenna sets across two frequency bands, this case boosts radar angular resolution by forming a common virtual antenna array.
Capacitive coupling lets foldable antennas work across hinged device portions without RF cables, while variable impedance tuning limits detuning.