MLG1005S0N6BT000 >
MLG1005S0N6BT000
TDK Corporation
FIXED IND 0.6NH 1A 100 MOHM SMD
305329 Pcs New Original In Stock
0.6 nH Unshielded Multilayer Inductor 1 A 100mOhm Max 0402 (1005 Metric)
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MLG1005S0N6BT000 TDK Corporation
5.0 / 5.0 - (418 Ratings)

MLG1005S0N6BT000

Product Overview

6643527

DiGi Electronics Part Number

MLG1005S0N6BT000-DG

Manufacturer

TDK Corporation
MLG1005S0N6BT000

Description

FIXED IND 0.6NH 1A 100 MOHM SMD

Inventory

305329 Pcs New Original In Stock
0.6 nH Unshielded Multilayer Inductor 1 A 100mOhm Max 0402 (1005 Metric)
Quantity
Minimum 1

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In Stock (All prices are in USD)
  • QTY Target Price Total Price
  • 100 0.0068 0.6800
  • 1000 0.0054 5.4000
  • 3000 0.0047 14.1000
  • 10000 0.0041 41.0000
  • 50000 0.0037 185.0000
  • 100000 0.0035 350.0000
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MLG1005S0N6BT000 Technical Specifications

Category Fixed Inductors

Manufacturer TDK

Packaging Tape & Reel (TR)

Series MLG

Product Status Active

Type Multilayer

Material - Core Ceramic, Non-Magnetic

Inductance 0.6 nH

Tolerance ±0.1nH

Current Rating (Amps) 1 A

Current - Saturation (Isat) -

Shielding Unshielded

DC Resistance (DCR) 100mOhm Max

Q @ Freq -

Frequency - Self Resonant 10GHz

Ratings -

Operating Temperature -55°C ~ 125°C

Inductance Frequency - Test 100 MHz

Mounting Type Surface Mount

Package / Case 0402 (1005 Metric)

Supplier Device Package 0402 (1005 Metric)

Size / Dimension 0.039" L x 0.020" W (1.00mm x 0.50mm)

Height - Seated (Max) 0.022" (0.55mm)

Datasheet & Documents

HTML Datasheet

MLG1005S0N6BT000-DG

Environmental & Export Classification

RoHS Status ROHS3 Compliant
Moisture Sensitivity Level (MSL) 1 (Unlimited)
REACH Status REACH Unaffected
ECCN EAR99
HTSUS 8504.50.8000

Additional Information

Other Names
445-16237-2
MLG1005S0N6BT000-DG
445-16237-1
445-16237-6
Standard Package
10,000

Reviews

5.0/5.0-(Show up to 5 Ratings)
Her***ang
Dec 02, 2025
5.0
Der Versand war blitzschnell, und der Support nach dem Kauf war sehr hilfsbereit.
Bri***Eyes
Dec 02, 2025
5.0
After-sales support from DiGi Electronics is consistently prompt and efficient.
Skybo***Dreams
Dec 02, 2025
5.0
Their commitment to sustainability shows they truly care about their customers and the environment.
Brigh***urney
Dec 02, 2025
5.0
Their support staff is friendly, knowledgeable, and always ready to help after my purchase.
Spark***pring
Dec 02, 2025
5.0
Customer support was available 24/7, providing assistance whenever I needed it.
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Frequently Asked Questions (FAQ)

What are the key reliability risks when using the MLG1005S0N6BT000 in high-vibration environments like automotive under-hood applications?

The MLG1005S0N6BT000, being an unshielded multilayer ceramic inductor in a fragile 0402 package, is susceptible to mechanical stress and microcracking under sustained vibration or thermal cycling. While its operating temperature range (-55°C to 125°C) meets automotive grade requirements, the lack of magnetic shielding and brittle ceramic core increases risk of latent failures in high-G environments. To mitigate this, ensure robust PCB layout with adequate strain relief, avoid placement near board edges or mounting points, and consider conformal coating. For mission-critical automotive designs, evaluate shielded alternatives like TDK’s MLF series or conduct HALT testing early in validation.

Can I replace the MLG1005S0N6BT000 with a Murata LQG15HSR60J00D in a 5G mmWave front-end matching network without redesigning the PCB?

Direct replacement of the MLG1005S0N6BT000 with Murata’s LQG15HSR60J00D is not recommended without verification. Although both are 0.6 nH ±0.1 nH inductors in 0402 packages, the Murata part has a lower self-resonant frequency (~8 GHz vs. 10 GHz for the MLG1005S0N6BT000) and different parasitic capacitance due to internal construction. At mmWave frequencies (e.g., 28/39 GHz), even minor parasitics significantly impact impedance matching. Re-simulate your matching network using S-parameter models from both vendors and validate with VNA measurements. If board space allows, consider tuning stubs or adding tunable capacitors to compensate.

How does the unshielded construction of the MLG1005S0N6BT000 affect EMI performance in densely populated RF PCBs, and what layout precautions are necessary?

The unshielded design of the MLG1005S0N6BT000 makes it prone to both radiating and receiving electromagnetic interference, especially in compact RF layouts with adjacent high-speed digital lines or power stages. Nearby components can couple noise through magnetic fields, degrading signal integrity in sensitive paths like LNA inputs or local oscillator circuits. To minimize risk, maintain at least 2–3 mm clearance from noise sources, orient the inductor perpendicular to aggressor traces to reduce coupling, and use ground guard rings or localized ground planes beneath it. Always perform pre-compliance radiated emissions testing if used near antennas or clock generators.

Is the MLG1005S0N6BT000 suitable for high-current DC-DC converter outputs where transient load steps exceed 1 A, despite its 1 A current rating?

The MLG1005S0N6BT000’s 1 A current rating refers to DC bias current, not transient handling capability. In DC-DC converters with fast load transients (e.g., processor core supplies), peak currents can briefly exceed 1 A without immediate failure—but repeated excursions increase risk of electromigration and long-term resistance drift due to Joule heating. Additionally, its 100 mΩ DCR generates ~100 mW of loss at 1 A, raising local temperature and potentially shifting inductance. For such applications, derate the current by 20–30%, monitor hotspot temperatures, and consider lower-DCR shielded inductors like TDK’s VLS201610CX series if thermal or efficiency constraints are tight.

What happens to the inductance stability of the MLG1005S0N6BT000 under varying DC bias conditions, and how should this influence selection in power-sensitive RF amplifiers?

Unlike ferrite-based inductors, the MLG1005S0N6BT000 uses a non-magnetic ceramic core, which means its inductance remains highly stable under DC bias—a critical advantage in Class AB or Doherty RF power amplifiers where bias currents fluctuate. However, at very high RF currents (approaching 1 A peak), skin effect and proximity losses can cause effective inductance to drop slightly near self-resonance. This may detune matching networks under large-signal conditions. Always simulate with harmonic balance analysis using manufacturer-provided nonlinear models, and validate with load-pull measurements. If bias stability is paramount, the MLG1005S0N6BT000 is superior to powdered-iron types but still requires empirical verification at full output power.

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