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RF & Communications Engineering

Radio Frequency Chart

Enter any frequency to identify its ITU-R band, calculate its free-space wavelength, and locate it on a logarithmic spectrum chart.

Range
>0.3 Hz–3 THz
Basis
ITU-R V.431-9 (2025)
Equation
λ = c ÷ f
Use
Lookup and comparison

Instant RF lookup

Find the RF Band for Any Frequency

The result uses broad ITU band nomenclature and the exact speed of light in vacuum.

Logarithmic RF spectrum position 2.4 GHz
Logarithmic radio frequency spectrum Thirteen ITU-R telecommunications frequency bands from above 0.3 hertz through 3 terahertz. A marker indicates the entered frequency.

Each displayed band spans one decade on a base-10 logarithmic scale. Exact shared boundaries belong to the lower-frequency band under the ITU lower-exclusive, upper-inclusive convention.

RF bandUHFITU band 9 · Ultra High Frequency
Canonical frequency2.4 GHzConverted from the entered value
Free-space wavelength124.9 mmUsing c = 299,792,458 m/s
Band limits300 MHz–3 GHzBetween VHF and SHF

Spectrum context

Radio Frequency Spectrum Chart

Each named band spans one frequency decade, and the logarithmic scale preserves the true relationship between boundaries.

TLF–LF>0.3 Hz–300 kHzLong wavelengths, ground interaction, specialized communication and navigation.
MF–VHF300 kHz–300 MHzBroadcasting, long-range HF links, aviation, marine and land-mobile services.
UHF–SHF300 MHz–30 GHzCellular, GNSS, Wi-Fi, microwave, radar and satellite systems.
EHF–THF30 GHz–3 THzMillimeter-wave and terahertz sensing, imaging and high-capacity research links.

Classification is not authorization

Finding a broad RF band does not authorize transmission. Frequency allocations, channel plans, equipment approval, emissions, bandwidth, power limits and licensing depend on the jurisdiction and radio service.

Server-rendered reference

ITU-R Frequency Bands, Ranges and Wavelengths

Search all 13 named bands, sort numeric boundaries, or copy a row with its displayed units and engineering notes.

Search by band abbreviation, full name, example use or propagation term. The highlighted row matches the current frequency finder result.

Broad RF band nomenclature and calculated free-space wavelength ranges. Representative uses are examples, not exclusive allocations or operating permission.
Free-space wavelength Representative uses Propagation notes Copy
TLFTremendously Low Frequency Tremendously Low Frequency 0 0.3 Hz 3 Hz 1,000,000–100,000 km Extended telecommunications nomenclature; natural-field and geophysical context Wavelengths approach planetary and interplanetary scales; practical radiating systems are highly specialized.
ELFExtremely Low Frequency Extremely Low Frequency 1 3 Hz 30 Hz 100,000–10,000 km Submarine communication research, geophysical and natural-field studies Very long wavelengths; practical antennas are electrically small and inefficient.
SLFSuper Low Frequency Super Low Frequency 2 30 Hz 300 Hz 10,000–1,000 km Submarine communication and geophysical research Strong ground interaction and very low available bandwidth.
ULFUltra Low Frequency Ultra Low Frequency 3 300 Hz 3 kHz 1,000–100 km Mine communication, geophysics, magnetospheric research Can penetrate soil and rock more effectively than higher-frequency radio.
VLFVery Low Frequency Very Low Frequency 4 3 kHz 30 kHz 100–10 km Time signals, navigation, submarine communication Ground-wave propagation can cover long distances; antennas are physically large.
LFLow Frequency Low Frequency 5 30 kHz 300 kHz 10–1 km Longwave broadcasting, navigation beacons, time standards Stable ground-wave coverage with some skywave behavior.
MFMedium Frequency Medium Frequency 6 300 kHz 3 MHz 1,000–100 m AM broadcasting, maritime and aeronautical services Ground wave dominates by day; ionospheric skywave can extend range at night.
HFHigh Frequency High Frequency 7 3 MHz 30 MHz 100–10 m Shortwave broadcasting, amateur radio, aviation, maritime Ionospheric propagation can support intercontinental links.
VHFVery High Frequency Very High Frequency 8 30 MHz 300 MHz 10–1 m FM radio, television, airband, marine radio, land mobile Primarily line of sight, with useful diffraction and occasional propagation enhancements.
UHFUltra High Frequency Ultra High Frequency 9 300 MHz 3 GHz 1 m–10 cm Television, cellular, GPS, Wi-Fi, Bluetooth, land mobile Mostly line of sight; smaller antennas and greater building interaction than VHF.
SHFSuper High Frequency Super High Frequency 10 3 GHz 30 GHz 10–1 cm Microwave links, radar, satellite, 5 GHz Wi-Fi Directional antennas are practical; rain and atmospheric effects become more important.
EHFExtremely High Frequency Extremely High Frequency 11 30 GHz 300 GHz 10–1 mm Millimeter-wave radar, satellite links, radio astronomy, high-capacity wireless High free-space loss and atmospheric absorption; narrow beams and compact antennas.
THFTremendously High Frequency Tremendously High Frequency 12 300 GHz 3 THz 1–0.1 mm Terahertz imaging, spectroscopy, research communications Strong material and atmospheric absorption; largely specialized and experimental.

Boundary convention follows ITU-R V.431-9: the lower limit is exclusive and the upper limit is inclusive. Thus 300 MHz belongs to VHF, while a value just above 300 MHz belongs to UHF. Wavelength ranges are calculated in free space.

Table utilities

Key takeaways

How to Read the RF Band Chart

  • Named bands are decade-based. VHF is above 30 MHz through 300 MHz, UHF is above 300 MHz through 3 GHz, and SHF is above 3 GHz through 30 GHz.
  • Wavelength decreases as frequency rises. Multiplying frequency in hertz by free-space wavelength in meters returns the speed of light.
  • Uses overlap. A service can occupy only portions of a broad band, and the same band can support many services.
  • Letter bands are a different system. L, S, C, X, Ku, K and Ka bands overlap the broad ITU bands and should not be treated as replacements for them.

Important Limits and Regulatory Context

Do not select an operating frequency from this chart alone

The chart identifies broad nomenclature only. Consult the current allocation table and service rules for the applicable country, region and equipment. In the United States, federal and non-federal spectrum responsibilities are divided between NTIA and the FCC.

The wavelength result assumes propagation in vacuum. In coaxial cable, dielectric materials, waveguide and other media, phase velocity differs from the speed of light and the physical wavelength changes.

Frequency-to-Wavelength Method

At an exact shared boundary, the lower-frequency band is returned. For example, 300 MHz is VHF; UHF begins immediately above 300 MHz under the ITU lower-exclusive, upper-inclusive convention.

  1. Convert the entered frequency to hertz.
  2. Confirm that the value is greater than 0.3 Hz and no greater than 3 THz.
  3. Match the frequency to the applicable decade band.
  4. Calculate wavelength and format both quantities in readable engineering units.

At an exact shared boundary, the lower-frequency band is returned. For example, 300 MHz is VHF; UHF begins immediately above 300 MHz under the ITU lower-exclusive, upper-inclusive convention.

Exact-boundary rule

For a band shown as 30–300 MHz, 30 MHz is excluded and 300 MHz is included. This page applies that convention consistently in the calculator, table and spectrum marker.

Frequency
Cycles per second, measured in hertz.
Wavelength
Distance traveled during one cycle in the stated medium.
Band boundary
A nomenclature limit, not necessarily a channel edge or allocation boundary.

Worked Radio Frequency Examples

100 MHz FM-region example

Input: 100 MHz = 100,000,000 Hz.

Band: VHF because 30 MHz ≤ 100 MHz < 300 MHz.

Wavelength: 299,792,458 ÷ 100,000,000 ≈ 2.998 m.

Check: A wavelength near 3 m is consistent with the VHF decade.

2.4 GHz wireless example

Input: 2.4 GHz = 2.4 × 109 Hz.

Band: UHF because 300 MHz ≤ 2.4 GHz < 3 GHz.

Wavelength: 299,792,458 ÷ 2.4 × 109 ≈ 0.1249 m.

Check: 124.9 mm falls within the UHF wavelength span of 1 m to 10 cm.

10 GHz microwave example

Input: 10 GHz = 10 × 109 Hz.

Band: SHF because 3 GHz ≤ 10 GHz < 30 GHz.

Wavelength: approximately 29.98 mm.

Check: A wavelength near 3 cm is consistent with SHF microwave systems.

ITU Bands, Microwave Letter Bands and Allocations

Use ITU broad bands for scale

  • ELF through THF describe decade-wide frequency regions.
  • They are useful for propagation, wavelength and high-level technology context.

Use letter bands for the stated field

  • Radar and microwave references often use L, S, C, X, Ku, K and Ka.
  • Boundaries can differ by standard, industry and application.

Use allocation tables for legal service status

  • Allocations divide spectrum among services and can vary by ITU Region.
  • Assignments and licenses authorize particular stations or systems.

Common radar letter-band reference

These ranges are examples reported by ITU-R V.431-9 for radar terminology. Letter-band usage is not globally uniform, so always state the frequency limits with the symbol.

Example radar letter-band ranges from ITU-R V.431-9 Table 4.
Letter bandExample radar rangeOverlapping broad band
L1–2 GHzUHF
S2–4 GHzUHF / SHF
C4–8 GHzSHF
X8–12 GHzSHF
Ku12–18 GHzSHF
K18–27 GHzSHF
Ka27–40 GHzSHF / EHF

Typical propagation changes across the spectrum

Lower-frequency waves generally diffract more readily and may follow the ground or interact with the ionosphere. As frequency increases, practical antennas become smaller and directional gain becomes easier to obtain, but obstruction, free-space path loss, rain attenuation and atmospheric absorption can become increasingly important.

Sources, Scope and Data Rights

Current ITU-R telecommunications band nomenclature and calculated free-space wavelengths; national allocation tables are not reproduced.

The page independently structures the named frequency bands and calculates wavelength from the exact speed of light. Official allocation sources are linked for regulatory follow-up.

Dataset and Review Details

Publisher
Turn2Engineering Editorial Team
Page basis
ITU-R V.431-9 (10/2025)
Calculation
λ = 299,792,458 / f
Valid range
Greater than 0.3 Hz through 3 THz
Reference medium
Vacuum/free space
Dataset version
RF-BANDS-2.0
Generated
August 2026
Rights status
Limited educational transformation; no full standards-derived CSV export

Radio Frequency Chart FAQs

2.4 GHz is in the broad UHF band because UHF extends from 300 MHz up to 3 GHz. Specific 2.4 GHz applications still depend on national allocations and service rules.

Use the Chart for Classification, Then Verify the Rules

Use the finder to identify the broad RF band and free-space wavelength, the logarithmic strip to understand spectrum position, and the table to compare all band limits. For actual transmission or equipment selection, continue to the current allocation and service rules that govern the project.

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