Transformer-coupled coils and a series inductor counter current weakening in close-spaced radiating elements, preserving antenna efficiency.
A housing-actuated speaker lets a multi-protocol wireless tag emit sound and tactile cues, helping users find non-GPS items more reliably.
Hemispherical 3D radiating elements widen antenna array coverage beyond 45° while maintaining high gain for beam steering in dense urban links.
Separate dielectric layers tuned to different antenna frequencies improve electromagnetic focusing, gain, and multi-band transmission efficiency.
Stacked via pads and conductive vias match signal lines to RF pads above 10 GHz while preserving compact substrate area.
A bent stepped radiator layout enables low- and high-band resonance in limited space while preserving reliable frequency coupling in thin devices.
Overlapping patch elements and selective couplers enable compact multi-band antenna operation across lower and mmWave frequencies.
Connected antenna and ground members let separate housings act as a longer antenna, improving low-band coverage without adding antenna space.
Dedicated front-end paths with shared signal circuitry let compact wireless hardware support more antenna arrays without added cost or performance loss.
Wide navigation beams and directive data beams help LEO satellites improve GNSS availability, faster fixes, and legacy terminal positioning.
A bezel-integrated secondary antenna and bottom primary antenna improve broadband wireless microphone performance while minimizing RF interference.
A pseudo-coaxial line on a multilayer dielectric helps 28 GHz dipole antennas improve cross-polarization and port isolation for MIMO.
A shared ground point and distributed capacitor let adjacent terminal antennas cut interference and widen GPS, N41, and N78 coverage.
Parallel-fed radiators on one layer simplify display-integrated antenna routing while improving two-direction signal detection and sensitivity.
A perpendicular 3D antenna layout improves low-band MIMO isolation, lowers ECC, and preserves terminal space for compact phones.
Vertical stacking of capacitance-loaded antennas reduces vehicular antenna size while preserving multi-band gain and reception sensitivity.
A shared conductive frame switches between antenna paths to cover multiple bands while reducing antenna space in high screen-to-body terminals.
A moving antenna uses time-of-arrival, signal strength, and angle data to locate tags with fewer fixed RF antennas in large facilities.
Dielectric-coated metallic film connectors link reflector parts indirectly to lower passive intermodulation and support flexible frequency coverage.
A compact multi-sensor assembly uses periodic logging, e-ink display, BTLE, and LoRa to track threshold events with low power.
By integrating phase shifters into antenna feed boards and shrinking duplexers, this case cuts PIM, weight, and thermal burden.
Multiple patch and dipole antennas use the side bezel as a legacy radiator to improve 5G coverage while limiting module interference.
Frequency-selective dipole arms cut inter-band scattering and coupling, enabling narrower multi-band base station antennas without pattern distortion.
Localized deletions in a conductive window coating tune a vehicle slot antenna across wide RF bands while preserving appearance and heat reduction.
Periodic H-shaped slots in a planar EBG layer block E-band surface waves between adjacent antennas without costly metallic vias.
Differently inclined coil openings in RFID RFIC modules suppress adjacent-tag coupling and improve stacked tag reading reliability.
Electromagnetic coupling and split radiating elements widen LTE low and high bands while enabling carrier aggregation without switches.
A capacitor-inductor filter between the balun and ground plane suppresses common-mode resonance without narrowing antenna bandwidth.
Light-activated photoconductive links replace tuners and phase shifters to cut parasitics, simplify antenna hardware, and support RF calibration.
Additive-polarity coil coupling and phase adjustment improve band isolation in a compact dual-antenna layout without sacrificing radiation efficiency.
A parasitic element and AMC-backed conductor layers steer radiation forward while improving isolation from nearby antennas in compact electronics.
Housing covers and piezo plates double as BT and UWB antennas, improving compact tracker range and pinpointing without separate antenna parts.
A shunt-loaded stepped-impedance notch element cuts depth and weight while preserving ultra-wideband operation and back-plate insensitivity.
A filtered conductive plate isolates high-band impedance effects, improving multi-band antenna efficiency while preserving first-band resonance.
Different PRFs across packet portions enable discontinuous UWB transmission, lowering power use and implementation complexity while preserving performance.
An aperture-in-aperture CubeSat antenna combines L-band and Ka-band links with dual polarization to save space and support higher data rates.
Segmented radiating arms shift antenna length into another direction to increase element spacing, cut coupling interference, and improve MIMO isolation.
A tuned decoupling resonator redirects coupling current between stacked polarized antennas, improving isolation without enlarging the antenna footprint.
Four feed terminals with phase shifting and signal mixing improve axial ratio across wide bands, enabling more accurate vehicle and drone positioning.
A balun-ground filter with capacitor and inductor branches suppresses common-mode resonance and protects low-band antenna performance.
A metallic radome reflector boosts indoor multi-band antenna gain to offset millimeter-wave penetration loss without outdoor installation.
Printed radiators, slots, and a short-circuit structure enable compact tri-band coverage with easier frequency tuning and lower assembly cost.
A battery-casing and FPC dipole uses mixed dielectric loading to deliver dual-band radiation in smart glasses with less space and energy use.
A loop resonator, director, and 3D ground assembly enable compact SMT antenna arrays with beam shaping, impedance matching, and higher 5G data rates.
A display conductive plate and PCB patterns form an integrated antenna that saves space, avoids extra display layers, and supports GPS and Bluetooth.
Multiple coupled radiation elements on a PCB substrate expand mobile and WLAN band coverage while preserving impedance matching and radiation efficiency.
Optical control of a photo-sensitive layer replaces driving electrodes, cutting phased-array antenna cost while expanding bandwidth.
Built-in filtering within a differential patch antenna feed network improves wideband gain, out-of-band rejection, and cross-polarization without external filters.
A low-profile antenna layout places the GNSS element closer to the substrate and TEL antennas above it to limit interference and preserve signal quality.
A corner clearance antenna layout creates inductive input impedance, replacing lossy series inductors with capacitive matching for small IoT radios.