Close coupling between a line feed and two mushroom cells broadens antenna bandwidth while avoiding the size increase of multi-cell designs.
Auxiliary antenna connectors let one access point reroute RF paths and extend coverage behind or below the unit, reducing dead spots.
Nested low-band and dual-polarized MIMO radiators cut antenna length while supporting multiband mobile radio and Massive MIMO.
Physical nesting of radiating elements separates transmit and receive bands, simplifying the feeding network without enlarging the antenna.
A conductive sheet shields the FPCB-antenna overlap, reducing interference while preserving wireless performance in foldable housings.
A multilayer antenna package in a flexible wearable band uses a back plane and dielectric isolation to limit body interference and improve wireless links.
Stacked patch elements, L-shaped probes, and a resonant slot extend FR2 bandwidth while improving cross-polarization isolation and saving space.
Single-piece dipoles with solder-free grounding cut passive intermodulation, lower antenna cost, and simplify manufacturing.
Separate feed and grip-sensing patterns let a palm-rest antenna support dual-band wireless while limiting hand-induced interference.
Electromagnetic coupling and tuning enable a compact annular circular antenna to improve wearable satellite reception and resist multipath interference.
A switched shared antenna uses separate GPS and WiFi matching circuits to save terminal space while improving signal tuning and debuggability.
Vertical stacking and interleaved element spacing enable multi-band signal transmission and reception in a compact antenna array.
Segmented non-energization patch conductors improve impedance matching and resonance to widen antenna bandwidth and raise gain.
Asymmetrical transparent antenna patterns and a UHB ground radiator cut feeding loss and stabilize 4G/5G performance on vehicle glass.
Multiple spaced radiators and hollow regions create dual resonances that widen bandwidth while keeping the antenna profile compact.
A coaxial cable inside a conductive tube with spaced ferrite beads self-tunes across frequencies, maintaining VSWR without a ground plane.
A branched frame antenna with a capacitor and matching module cancels induced current, improving isolation and transmission efficiency.
A conductive magnet coating doubles as an antenna radiator, preserving fold-hold force while avoiding antenna volume loss in compact foldable housings.
Conductive transparent films on lenses enable wireless and proximity sensing while preserving visibility and moving EM radiation away from the head.
Flexible PCB tuners placed beside a connector help a housing antenna maintain wireless performance without sacrificing speaker or vent space.
Cantilever supports place antenna arrays over a chassis cavity, easing dense multi-band integration while simplifying feeding layout and module replacement.
A dual-substrate antenna layout improves isolation between closely packed multi-band emitting elements by shifting lower-band elements farther away.
Intersecting arc-wire polarizations expand signal coverage and reduce vertically polarized dead zones in a compact dipole antenna.
Frequency selective surfaces cancel higher-band induced currents in cross-dipole base station antennas, reducing scattering and antenna width.
Electromagnetic coupling and tuning elements enable a compact wearable antenna to improve satellite positioning and resist multipath interference.
A stacked patch and feeding structure cuts 5G antenna volume and cost while preserving the target band and directivity.
Looped low-band dipole arms, balun feeding, and rear spacing reduce interference with high-band radiators in compact multi-broadband antennas.
Orthogonal baluns and segmented copper-foil radiation arms suppress cross-band coupling while improving impedance matching in fused base station antennas.
Spatially arranged dual-band and single-band MIMO antennas use isolation components to improve Wi‑Fi coverage uniformity and reduce interference.
A capacitor-linked unequal stub layout reduces coupling in compact MIMO antennas, improving isolation, efficiency, and radiation stability.
A shared radiating element uses differential and common mode feeds to cut antenna volume while preserving isolation and multiband efficiency.
Overlapping parasitic patch radiators enable compact 28/39 GHz dual-band, dual-polarization antenna operation with improved bandwidth.
Segmented conductive and non-conductive housing sections keep wireless links stable while a deformable display rolls into the device.
Slots and edge notches shape surface-current resonance to widen antenna bandwidth in a compact planar radiator while supporting dual polarization.
Four sequentially fed patches and parasitic lines preserve circular polarization at wide scan angles, helping mm-wave arrays keep low axial ratio.
A segmented cavity with dielectric slots broadens 2.4G and 5G laptop antenna bandwidth while sharing space with ventilation.
Side-surface radiation conductors and flexible connections keep foldable device antennas stable in slim housings during folded and unfolded use.
Staggered microstrip metal sheets create a continuous filter-radiator that suppresses 5G interference while preserving 4G bandwidth and isolation.
Conjugate impedance matching between two radiators expands antenna coverage and bandwidth while improving communication reliability.
Per-frame modal antenna switching uses CQI-based pattern selection to improve WLAN point-to-multipoint signal quality and cut errors.
Dual-band cross-dipole elements with electromagnetic bandgap structures cut antenna size and wind loading while preserving multiband base station coverage.
Three radiating sections and a coupling layout shrink notebook antenna area to 90 mm2 while sustaining 2.4, 5, and 6 GHz coverage.
An isolated antenna area within the electrochromic conductive layer preserves signal reliability while expanding the color-changing housing area.
Capacitance sensing detects nearby objects and switches antenna matching impedance to maintain RF performance and reduce power use.
A stacked substrate and segmented radiation layout shrinks antenna size while preserving multi-band coverage and easier mounting.
A coiled radiating loop adds distributed inductance to stay electrically invisible across a nearby band and preserve antenna radiation patterns.