Segmented SIW cavity resonators enable dual-band, dual-polarized operation with higher radiation efficiency and cleaner cross-polarization.
A conductive device frame acts as a parasitic arm to boost wide-band antenna efficiency without longer antennas or added tuner complexity.
Stacked PCB slot antennas in a vehicle roof frame enable low-profile LTE and 5G MIMO operation while reducing antenna interference.
Inclined split reflector panels and independent electrical tilt improve multiband antenna gain, beam quality, and wind loading.
Uses an existing porch light junction box to add outdoor power, voltage conversion, and Wi-Fi or cellular connectivity without battery devices.
A metal frame radiator creates two orthogonal resonances to deliver circular polarization in compact terminals for satellite links.
A controller uses frequency counters, sync signals, and time-domain interpolation to correct antenna clock mismatch and preserve UWB radar spatial resolution.
Stacked antenna panels separated by dielectric layers boost MIMO gain and multi-band coverage while conserving space and reducing complexity.
Transformer-coupled switching replaces lossy transistor paths in a differential antenna circuit, cutting mmWave insertion loss and chip area.
A parallel inductor and antenna multiplexer isolate external object capacitance, reducing false proximity detection in mobile terminals.
A slit in the second housing preserves antenna separation during sliding, maintaining radiation efficiency in rollable electronics.
A tapered slot between two antenna bodies strengthens coupling currents to widen bandwidth across Wi-Fi, FDD, TDD, and N77/N78/N79 bands.
A compact cavity layout with a conductive post and coupling metal part preserves broadband WLAN coverage without lossy cavity filling.
A coplanar waveguide feed transforms 73-ohm dipole impedance to 50 ohms, extending 5G antenna matching across 600-6000 MHz.
A stacked PCB with a protruding elastic contact increases frame antenna clearance area in mobile phones, improving band support and signal stability.
A bent substrate separates antenna units from the IC, simplifying mobile terminal mounting while reducing interference and improving wireless links.
Capacitively coupled dual radiating elements widen smartwatch antenna bandwidth and improve multi-band coverage on high-permittivity housings.
Reconstituted wafer integration embeds multiple dies into a dual-polarized phased array to cut RF loss, assembly complexity, and size limits.
A vertically stacked antenna layer above the substrate cuts package size while preserving impedance tuning, radiation control, and signal transfer.
Multiple decoupling loops and segmented antenna elements extend printed dipole coverage from 600 MHz to 6000 MHz for 5G-NR and LTE.
Dynamic antenna tuning blanks or deactivates GNSS receivers during cellular or LEO operation to cut attenuation and unnecessary power use.
A switchable isolation device lets integrated L-band transmit and receive antennas support satellite links without bulky external antennas.
A folded dipole and metallic patch layout delivers compact shared-aperture dual-band resonance with inherent 50 Ω matching for medical and 5G use.
Orthogonally rotated transmit and receive dipoles improve polarization isolation, axial ratio stability, and impedance during phased-array scanning.
A PIN-diode frequency selective surface broadens mmWave window transmission to improve indoor signal quality and reduce repeater demand.
A PCB decoupling structure placed between two orthogonal antennas boosts low-band isolation above 20 dB and improves MIMO performance.
A ceramic carrier with blind holes and inverted radiator placement improves low-frequency response and high-frequency bandwidth in compact antennas.
A switchable isolation device between two internal L-band antennas improves signal separation while avoiding bulky external satellite antennas.
Mode switching between common and differential states reconstructs antenna patterns to preserve signal reception in space-limited full-screen phones.
A 5G module board also serves as a lower-frequency antenna, saving terminal space while preserving cellular, Wi-Fi, and 5G coverage.
Orthogonally rotated transmit and receive dipoles improve polarization isolation, preserve axial ratio, and stabilize impedance during beam scanning.
An enclosed reference region and capacitive resonator web let a PCB antenna keep dual-band performance across different board sizes without retuning.
Multiple antennas in one tag housing enable GPS-free item localization across different wireless protocols while keeping tracking reliable.
An L-shaped antenna uses unequal electrical lengths to balance horizontal and vertical modes, maintaining radiation when held in hand.
A floating conductor confines fringing fields in a compact patch antenna, enabling dual-polarized penta-band 5G array performance.
Raised inductance in split antenna arms helps a compact vehicle antenna cover low and high frequency bands without enlarging the substrate.
A defected ground layer with stacked antenna boards enables compact multi-antenna placement while reducing tuning effort and environmental sensitivity.
A parasitic element coupled to a metal housing slot enables MIMO antenna integration without clearance, improving radiation efficiency in thin devices.
Multiple UWB antennas are combined and switched to overcome signal loss and multipath, improving indoor-outdoor target positioning.
An on-chip oscillation unit and active antenna reduce impedance-driven amplitude loss and waveform distortion in terahertz links.
Separate resonant modes and adjustable termination networks improve signal termination and transmission across multiple millimeter-wave bands.
A wave-impedance-matched transparent housing improves millimeter-wave transmittance, helping compact 5G antennas meet radiation needs.
Opposite-phase surface currents from a matching circuit shift foldable antenna parasitic resonance out of band to improve radiation.
A U- or H-shaped decoupling element between adjacent RF transmission lines cuts coupling interference in compact base station antenna circuits.
Feeding networks built into dielectric wall metal layers enable compact multi-band antenna arrays without multilayer PCB routing complexity.
A coiled closed-loop radiator adds distributed inductance to stay electrically invisible across bands and preserve antenna radiation patterns.
Radar antennas placed in PCB gaps between mmW elements add position sensing and RF exposure monitoring without disrupting mmW communication.
A ring conductor and parallel slits tune impedance and bandwidth in a circuit-integrated patch antenna, improving directivity, gain, and range.
Priority-based UWB channel recovery frees occupied ranging slots so new smart keys can connect smoothly when anchor channels are full.