| Brand Name: | Hoan |
| Model Number: | HALT68005 |
| MOQ: | 10 |
| Payment Terms: | Western Union,T/T,D/P,D/A,L/C |
High-Frequency Technical Summary
The HALT68005 is an extraordinary, high-inductance, and ultra-broadband Conical Inductor designed for millimeter-wave RF bias networks, high-speed optoelectronics (up to 40 Gbps/100 Gbps), and high-frequency broadband bias-tees. Offering the absolute highest nominal inductance in our broadband catalog—2000 nH (2.0 µH) ± 20%—and operating over an unprecedented frequency spectrum of 10 MHz to 40.0 GHz, this inductor is wound with an ultra-fine 0.05 mm (50 µm) copper wire and supports a continuous DC current of 200 mA.
In ultra-broadband systems, achieving continuous isolation from low frequencies (down to 10 MHz) to millimeter-wave bands (up to 40 GHz) normally requires cascading multiple inductors of different values, which inevitably introduces destructive parasitic resonances. The HALT68005 resolves this challenge by providing an exceptionally high 2000 nH inductance combined with a tapered conical architecture. The continuous change in winding diameter smoothly distributes parasitic capacitance, providing a flat, resonance-free high-impedance response over the entire 10 MHz to 40 GHz bandwidth.
Key Performance Advantages
Extreme Broadband Range (10 MHz - 40 GHz): Provides continuous, flat RF shielding from low MHz up to millimeter-wave frequencies, replacing multiple cascaded inductors.
Micro-Wire Winding (0.05 mm): Wound with ultra-fine 50 µm copper wire, enabling a high turn count to achieve 2000 nH (2.0 µH) while maintaining an ultra-compact mechanical footprint.
Eliminates Cascade Resonances: A single-component solution that suppresses signal dips and phase distortions commonly caused by multi-stage inductor biasing.
Air-Core Saturation Protection: Prevents magnetic saturation at high power levels, ensuring absolute inductance stability and high-Q performance under varying temperatures.
Solderable Flying Leads: Equips standard solderable gold/tin-plated copper flying leads on both small and large ends, providing easy integration onto microwave microstrips.
Overall Dimensions
![]()
Comprehensive Parameter Datasheet
| Specifications Category | Technical ParameterName | Guaranteed Values |
Testing /Measurement Conditions |
| Electrical Specs | Nominal Inductance | 2000 | ηH (+20% Tolerance @ 10 MHz,0.1Vrms, 25°C) |
| Self-Resonant Frequency (SRF) | >40.0 | GHz (Flat, resonant-free high-impedance curve) | |
| Maximum ContinuousCurrent | 200 | mA (Rated at ΔT < 15°C temperaturerise) | |
| Recommended Frequency Band | 0.010-40.0 | GHz (Broadband RF decoupling,Millimeter-wave Bias-Tee) | |
| Tested Frequency Band | 0.01-40.0 | GHz (With calibration fixture compensation) | |
| Physical Geometry | Overall Coil Length | 3.0 | mm (Typical length of the wound cone section) |
| Nominal Winding Wire Diameter | 0.05 | mm (Ultra-fine copper wire for maximum turns) | |
| Optional Wire Diameter | 0.08 | mm (Custom low-DCR option for higher current) | |
| Design Architecture | Air-core Conical Coil | Tapered winding with dual straight flying leads | |
| Assembly Processes | Mount Style | Flying Lead Welding | Suitable for eutectic soldering /micro-soldering |
| Adhesive Stabilization | Epoxy Glue Fixing | Must be dot-epoxied to prevent vibration | |
| Reliability & Quality | Operating Temperature | -55 to +125 | °C (Industrial & Strategic Grade) |
| Storage Temperature & RH | 20-25°C, 40%-60% RH | Cleanroom environment |
Multi-Frequency Operational Performance Breakdown
The HALT68005 undergoes strict vector network analyzer (VNA) testing using millimeter-wave calibration fixtures.Its broadband impedance and attenuation performance are categorized into three major frequency segments:
| Frequency Spectrum | Attenuation/Impedance Characteristic |
Technical Application & Fixture Engineering Notes |
| 10 MHz - 500MHz | Extremely high inductive reactance;insertion loss < 0.15 dB. | Outstanding low-frequency transition blocking;isolates power supplies from noise starting at 10MHz |
| 10 MHz -20GHz | Flat, continuous isolation curve; no major dip or resonant peak. | Delivers robust > 2.2 KΩ RF isolation; perfect forhigh-speed telecom transceivers. |
| 10 MHz - 40GHz | Outstanding high-frequency response; maintains shielding up to 40 GHz. | Verified millimeter-wave performance; microstriplayout must minimize parasitic pad capacitance toprevent degradation. |
Comparative Technical Matrix (HALT68005 vs. HALT60005)
This table highlights the design differences between maximum-inductance 200onH and 140onH micro-wire coils:
| Engineering Parameter | Ultimate-Inductance Conical (HALT68005) | Maximum-Inductance Conical (HALT60005) | Engineering Trade-off & DesignGuideline |
| Nominal Inductance | 2000 nH (2.0uH) | 1400 nH (1.4 uH) | HALT68005 provides theabsolute highest inductance,allowing lower frequency filtering down to 10 MHz. |
| Winding Wire Diameter | 0.05 mm (50 um) | 0.05 mm (50 um) | Both use microscopic wire, butHALT68005 features a morecompact and precise winding structure to pack more turns |
| Maximum DC Current | 200 mA | 200 mA | Both support up to 200 mA continuous current. |
| Lower Frequency Limit | 10 MHz | 20 MHz | HALT68005 starts filtering atthe absolute lowest frequencyof 10 MHz |
| Upper Frequency Limit | 40.0 GHz | 40.0 GHz | Both maintain low parasitic capacitance, enabling 40GHz operation. |
| Ideal Application | Ultimate low-frequency millimeter-wave bias-tees,high-speed 40G/100G transceivers. | Ultimate low-frequency millimeter-wave bias-tees,high-speed 40G/100G transceivers | Use HALT68005 for applications requiring ultimate broadband performance starting under 20 MHz. |
Microwave Micro-Assembly & Installation Guide
To preserve millimeter-wave signal integrity and prevent physical damage to the delicate copper wire, assembly operators must strictly follow this SOP:
Physical Alignment & Orientation
Cone Tip Orientation: The small end of the conical inductor must point downward and be positioned perpendicular (≈90°) to the RF transmission microstrip line.
Lead-Wire Length: Keep the flying lead from the small end (tip) as short as possible (ideally <0.3 mm to the microstrip). At 40 GHz, even a 0.5 mm lead wire acts as a significant parasitic inductor, introducing unwanted reflection and signal degradation.
Physical Fixation: Conical inductors must be secured to the substrate using a small dot of non-conductive, low-outgassing epoxy (e.g., Epotek H70E or H65) on the side of the winding. This prevents resonant microphonic vibrations and mechanical failure under high-vibration environments.
Micro-Soldering and Welding SOP
Soldering Temperature: Controlled micro-soldering tip temperature should be 280℃−320℃ for a duration of ≤2 seconds to prevent enamel degradation or melting of the ultra-fine 0.05mm copper wire.
Lead-Free Compliance: Fully compatible with lead-free SAC305 solder and high-melting-point eutectic gold-tin (AuSn) or lead-tin (PbSn) solder alloys.
FAQ
Q1: Why is a single 2000 nH conical inductor preferred over cascading multiple inductors?
A:In standard bias networks, achieving broadband isolation requires cascading a large-value inductor (for low frequencies) with a small-value inductor (for high frequencies). However, the connection between them creates a parasitic LC circuit, introducing a sharp resonant dip (transmission drop) in the microwave band. The HALT68005 combines an exceptionally high 2000 nH inductance with a tapered conical architecture, achieving continuous, resonance-free isolation from 10 MHz to 40 GHz in a single component.
Q2: Is the 0.05 mm wire durable enough for Strategic-grade high-vibration environments?
A:While a 0.05 mm wire is extremely delicate, the low mass of the air-core conical coil actually reduces its susceptibility to mechanical shock. When properly secured with a micro-dot of low-outgassing epoxy on the side of the winding, the assembly easily passes Strategic-grade vibration and mechanical shock tests (MIL-STD-202, Method 204 & 213).
Q3: Why is the upper frequency limit of the HALT68005 rated at 40 GHz?
A:The 40 GHz rating is achieved through advanced micro-wire manufacturing. By reducing the wire diameter to 0.05 mm, the capacitive coupling between winding turns is kept to an absolute minimum. This allows the inductor to maintain its inductive high-impedance state without entering parallel resonance, ensuring continuous shielding all the way up to 40.0 GHz.