products details

Created with Pixso. Home Created with Pixso. Products Created with Pixso.
Conical Inductor
Created with Pixso.

160nH Broadband Conical Inductors 100MHz - 22GHz Ultra Wideband RF Choke 22GHz Self Resonant Frequency

160nH Broadband Conical Inductors 100MHz - 22GHz Ultra Wideband RF Choke 22GHz Self Resonant Frequency

Brand Name: Hoan
Model Number: HALT25008
MOQ: 10 Pieces
Payment Terms: L/C,D/A,D/P,T/T,Western Union
Supply Ability: 50000 Pieces per Month
Detail Information
Place of Origin:
China
Certification:
ISO 9001:2015
Name:
Broadband Conical Inductors
Nominal Inductance:
160 NH ±20% (@10MHz, 0.1Vrms, 25°C)
Self-Resonant Frequency (SRF):
>22.0 GHz (Flat, Resonance-free Curve)
Operating Frequency Bandwidth:
0.1 GHz - 22.0 GHz (Rated); 0.01-40.0 GHz (Reference)
Maximum Continuous Current:
500 MA (ΔT ≤15°C Temperature Rise)
Assembly Method:
Flying Lead Welding + Epoxy Dot-Fixing
S-Parameters Data:
10MHz To 22GHz .s2p Touchstone File Available
Supply Ability:
50000 Pieces per Month
Highlight:

160nH Broadband Conical Inductors

,

100MHz Wideband RF Choke

,

22GHz Wideband RF Choke

Product Description

160nH HALT25008 Broadband Conical Inductor 100MHz-22GHz Ultra-Wideband RF Choke 22GHz Self-Resonant Frequency


Solving the Broadband Choke Dilemma with Conical Topology

Every RF engineer who designs active microwave circuits faces the same trade-off: how to block DC from leaking into the RF path without destroying wideband signal transmission. The physics of conventional wirewound inductors creates an unavoidable conflict—more turns provide better low-frequency isolation but introduce distributed capacitance that self-resonates in the microwave region, creating a narrowband notch right where you need clean throughput.

This is not a manufacturing tolerance issue. It is a fundamental electromagnetic limitation of uniform solenoid geometry. The only way to decouple these competing requirements is to abandon the uniform winding altogether.

The HALT25008 employs a continuously tapered cone winding that resolves this physics-level constraint. By graduating the turn diameter from a 0.08 mm fine-wire apex to a wider base, the structure distributes the parasitic turn-to-turn capacitance along a mechanical gradient rather than concentrating it at a single electrical node. The narrow tip, connected directly to the 50Ω microstrip, presents vanishingly small shunt capacitance to ground—preserving K-band transmission. The broader base packs sufficient turns to generate 160 nH of blocking inductance, active down to 100 MHz.

The SRF Story: Why 22 GHz Matters in Practice

Self-Resonant Frequency is the single number that separates usable chokes from datasheet fiction. A component may carry an impressive inductance specification at 10 MHz, but if that same part self-resonates at 5 GHz, it becomes a capacitor—not an inductor—above that frequency. Your bias tee has now become a high-pass filter you never designed.

The HALT25008 pushes SRF beyond 22.0 GHz. This is not a typical figure for a wirewound component carrying 160 nH. The physics behind this number is worth understanding:

  • Wire gauge selection: 0.08 mm (80 µm) diameter. The reduced conductor surface area between adjacent turns cuts the dominant parasitic capacitance term by roughly half compared to a 0.15 mm winding. Since SRF scales as 1/√(LC), halving the parasitic C pushes the resonance upward by approximately 40% in frequency.
  • Polyimide insulation: The enamel dielectric has a low relative permittivity (εr ≈ 3.5) and is applied in a thin, uniform coating, further suppressing the turn-to-turn capacitive coupling that limits conventional enameled-wire chokes.
  • Air-core topology: No ferrite. No core loss tangent increasing with frequency. No permeability collapse at elevated temperature or DC bias. The SRF is governed solely by the winding geometry—a deterministic, repeatable relationship.

Operational Bandwidth Characterization

Each HALT25008 is verified on a calibrated vector network analyzer with microstrip fixturing and TRL de-embedding. Three characteristic bands define the operational envelope:

Band Frequency Span Observed Behavior Design Implication
Low-Frequency Transition 10 MHz – 500 MHz Inductive reactance builds rapidly; insertion loss remains below 0.12 dB through the transmission line Sufficient blocking impedance prevents low-band noise from contaminating the DC supply rail
Primary Rated Band 100 MHz – 22.0 GHz Flat attenuation profile free of parallel resonance notches; sustained RF isolation exceeding 1.2 kΩ across the full span Rated operational window for wideband bias tees, optical transceiver choking, and general-purpose RF decoupling
Extended Reference 10 MHz – 40.0 GHz Usable isolation maintained but fixture parasitics begin to dominate above 25 GHz; measurements serve as design guidance rather than guaranteed specifications Millimeter-wave designers should account for microstrip pad capacitance and launch discontinuity in their EM simulations

Technical Specifications Summary

Parameter Value Measurement Context
Model Identifier HALT25008
Winding Architecture Air-core tapered conical, dual flying leads
Inductance (Nominal) 160 nH ±20% 10 MHz, 0.1 Vrms stimulus, 25°C ambient
Self-Resonant Frequency >22.0 GHz Resonance-free high-impedance characteristic
Rated Bandwidth 0.1 – 22.0 GHz Specified for bias-tee and decoupling use
Reference Bandwidth 0.01 – 40.0 GHz Fixture-compensated, design guidance only
DC Current Capacity 500 mA continuous ΔT limited to 15°C above ambient
Conductor Material Oxygen-free Cu, 0.08 mm Ø Polyimide-insulated, gold/tin plated leads
Physical Length 3.0 mm (wound section) Measured along the cone axis
Ambient Temperature Range -55°C to +125°C Qualified for industrial and defense environments
Storage Environment 20–25°C / 40–60% RH Cleanroom; 12-month shelf rating
Attachment Method Lead soldering + epoxy stabilization Compatible with SAC305, AuSn, PbSn alloys
Simulation Support .s2p Touchstone (10 MHz–22 GHz) VNA-characterized, de-embedded fixture data

Model Comparison: Understanding the Wire-Gauge Trade-Off

Hoan produces two 160 nH conical inductors differentiated by conductor diameter. Selecting the correct variant avoids over-specifying (and over-paying) or under-specifying (and risking field failures):

Design Attribute HALT25008 HALT20015 How to Decide
Wire Cross-Section 0.08 mm 0.15 mm Thinner wire = wider bandwidth; thicker wire = higher current
DC Bias Limit 500 mA 800 mA Check your LNA/PA bias controller maximum output
Low-End Cutoff 100 MHz 200 MHz If your IF or baseband extends below 200 MHz, choose HALT25008
High-End Corner 22.0 GHz 20.0 GHz HALT25008 gains 2 GHz of usable bandwidth at K-band
Inter-Turn Capacitance Reduced Nominal Flatter S21 response favors HALT25008 for broadband channels

Integration Guidelines for Maximum Bandwidth

Mounting a conical inductor is not equivalent to soldering an 0805 chip component. These practices are essential to achieve the rated bandwidth:

  1. Orientation: The apex (narrow tip) must face the RF microstrip and sit perpendicular to the transmission line. Any angular offset introduces asymmetric coupling that manifests as degraded S11 above 15 GHz.
  2. Lead trim: The tip-side flying lead must be kept below 0.5 mm from solder pad to winding body. Each additional 0.5 mm of lead length adds roughly 0.3 nH of series parasitic inductance—enough to shift the apparent SRF downward by several hundred MHz at K-band.
  3. Adhesive stabilization: After soldering, apply a single micro-dot of non-conductive, low-outgassing epoxy (Epotek H70E recommended) to the side of the winding. This arrests microphonic modulation of turn spacing under vibration. Do not encapsulate the full coil—excess dielectric adds unwanted shunt capacitance.
  4. Thermal relief: At 500 mA continuous in high-temperature environments, allow at least 0.5 mm of air clearance around the coil body to support convective cooling.
  5. Soldering thermal budget: 280–320°C tip, ≤3 seconds dwell per joint. The polyimide enamel tolerates brief thermal excursions but prolonged heating can anneal the fine copper and alter its mechanical properties.

Where This Component Fits

  • Wideband bias tees requiring single-inductor coverage from VHF through K-band
  • DC feed networks in 100G/400G/800G fiber-optic transceiver optical subassemblies (TOSA/ROSA)
  • GaAs and GaN MMIC amplifier drain/gate bias injection
  • PIN diode switch and step attenuator DC return paths
  • Phased-array antenna element bias distribution
  • Millimeter-wave VNA extender and test-fixture bias networks
  • X/Ku/K-band radar and electronic warfare receiver front-ends

Common Questions from RF Design Teams

Q: We need flat group delay through our bias tee. Does the HALT25008 introduce dispersion?
A: Because the HALT25008 has no ferrite core, there is no frequency-dependent permeability contributing to phase nonlinearity. The air-core structure combined with the distributed-capacitance topology yields essentially constant group delay across the rated band. Measured S21 phase deviation is less than ±5° from 100 MHz to 18 GHz on a properly de-embedded fixture. The .s2p file includes full phase data for your own dispersion analysis.

Q: How repeatable is the SRF from lot to lot?
A: The SRF of an air-core conical inductor is determined by winding geometry, not material properties. Since Hoan controls the taper profile, turn count, and wire tension through automated winding, lot-to-lot SRF variation is typically within ±1.5 GHz. Each production batch is sampled on a VNA, and the statistical process control data is available under NDA for high-volume programs.

Q: Can we get a 3D EM simulation model instead of just .s2p data?
A: Yes. Hoan provides a parameterized HFSS 3D model upon request. The model captures the exact tapered geometry, wire diameter, and lead configuration needed for full-wave EM co-simulation of your PCB layout. This is particularly valuable above 20 GHz where microstrip pad geometry and launch discontinuity dominate the measured response.

Q: What is the failure mechanism if we exceed the 500 mA rating?
A: The immediate effect is increased I²R heating within the 0.08 mm copper winding. The polyimide insulation is rated for continuous operation at 200°C, so insulation breakdown is not the primary concern. Rather, sustained over-current raises the copper resistivity (positive TCR of +0.39%/°C), which elevates DCR, which generates more heat—a slow thermal runaway. The 500 mA rating includes margin to prevent this positive-feedback loop from initiating at the maximum rated ambient of +125°C.

Q: Do you provide fixtured S-parameter data, or just probe-station measurements?
A: All .s2p data is acquired with the HALT25008 soldered onto a characterized microstrip calibration fixture using TRL de-embedding to move the reference plane to the component leads. This captures the real-world assembly environment, including solder joint parasitics, rather than idealized probe-landed data that does not represent the installed condition.