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