Fibre types: G.65x single-mode, multi-mode grades, specialty fibres
"Single-mode fibre" is a family, not one product: the ITU-T G.652 to G.657 recommendations describe fibres that differ in dispersion, cutoff, bend tolerance, loss and effective area, and a plant may contain three of them spliced together. Multi-mode has its own ladder of grades, and beyond both lie specialty fibres — dispersion-compensating, erbium-doped, polarization-maintaining, hollow-core — that appear inside systems rather than in ducts. This page is the catalogue: what each type is, its key parameters, where it is used, what happens when types meet at a splice, and how to identify what is already in the ground.
Single-mode fibre by ITU-T recommendation
| Type | Name | MFD at 1310 / 1550 nm | Zero-dispersion λ₀ | D at 1550 nm | Attenuation 1310 / 1550 | Bend radius (min) | Use |
|---|
| G.652.A/B | standard SMF (legacy) | 8.6–9.5 / ~10.4 µm | 1300–1324 nm | ≈ 17 ps/(nm·km) | ≤ 0.5 / ≤ 0.4 (B: 0.35 / 0.22); water peak at 1383 | 30 mm | pre-2000 plant; avoid E-band |
| G.652.C/D | low-water-peak SMF — the default | 8.6–9.2 / ~10.4 µm | 1300–1324 nm | ≈ 17 | ≤ 0.4 / ≤ 0.3 (typ. 0.33 / 0.19); 1383 ≤ 0.4 | 30 mm | everything from access to 400ZR; full CWDM band usable |
| G.653 | dispersion-shifted (DSF) | ~8 µm | ≈ 1550 nm | ≈ 0 | 0.35 / 0.22 | 30 mm | 1990s single-channel 1550 long haul; unsuitable for DWDM (four-wave mixing) |
| G.654.A–E | cut-off shifted, low loss, pure-silica core | ~10.5–12.5 µm | ≈ 1300 | ≈ 17–22 | — / 0.15–0.19 | 30 mm | submarine (A–D); G.654.E terrestrial 400G+ long haul (large effective area, low nonlinearity) |
| G.655 | non-zero dispersion-shifted (NZ-DSF: LEAF, TrueWave) | ~8.4–9.6 µm | outside C-band | +2 … +10 (or negative) | 0.35 / 0.22 | 30 mm | 10G DWDM long haul of the 2000s; small D suppresses FWM while limiting dispersion |
| G.656 | wideband NZ-DSF | ~8 µm | < 1460 | +2 … +14 over 1460–1625 | 0.35 / 0.22 | 30 mm | S+C+L band DWDM |
| G.657.A1 / A2 | bend-insensitive, G.652.D-compatible | 8.6–9.2 µm | as G.652.D | ≈ 17 | as G.652.D | 10 / 7.5 mm | FTTH drops, indoor, dense panels; splices to G.652 with ≤ 0.05 dB |
| G.657.B2 / B3 | bend-insensitive, not necessarily G.652-compatible | 6.3–9.5 µm | — | — | as G.652.D | 7.5 / 5 mm | in-building, terminal boxes; MFD mismatch to G.652 possible (0.1–0.3 dB) |
Key parameter definitions: How light propagates, Dispersion & bandwidth.
Multi-mode fibre grades
| Grade (ISO/IEC 11801) | IEC 60793-2-10 | TIA | Core | EMB 850 nm | OFL bandwidth 850 / 1300 | Attenuation 850 / 1300 |
|---|
| OM1 | A1b | 492AAAA | 62.5 µm | — (200 MHz·km OFL) | 200 / 500 | 3.5 / 1.5 |
| OM2 | A1a.1 | 492AAAB | 50 µm | — (500 OFL) | 500 / 500 | 3.5 / 1.5 |
| OM3 | A1a.2 | 492AAAC | 50 µm | 2 000 | 1 500 / 500 | 3.0 / 1.5 |
| OM4 | A1a.3 | 492AAAD | 50 µm | 4 700 | 3 500 / 500 | 3.0 / 1.5 |
| OM5 | A1a.4 | 492AAAE | 50 µm | 4 700 (850), 2 470 (953) | 3 500 / 500 | 3.0 / 1.5 |
OM3/OM4/OM5 are "laser-optimised": their index profile is measured by differential mode delay (DMD) to guarantee bandwidth with VCSELs. OM1/OM2 were specified for LEDs (overfilled launch, OFL). Reaches: Reach tables.
Specialty fibres
| Fibre | What is special | Where you meet it |
|---|
| Dispersion-compensating (DCF) | D ≈ −80 … −150 ps/(nm·km), small core, higher loss (0.5 dB/km) | DCM spools in 10G DWDM amplifier sites (Dispersion) |
| Erbium-doped (EDF) | Er³⁺ ions in the core; gain 1530–1565 nm when pumped at 980/1480 nm | inside EDFAs (Amplification) |
| Polarization-maintaining (PM) | stress rods (PANDA, bow-tie) keep polarization axes | coherent transceiver internals, sensors, pump combiners |
| Photosensitive | Ge/B doping for UV-written Bragg gratings | FBG filters, DCMs, sensors |
| Large-effective-area | A_eff 110–150 µm² vs 80 | G.654.E for long haul: lower non-linearity (Non-linear effects) |
| Hollow-core (HCF) | light in air: ~30 % lower latency (≈ 3.3 vs 4.9 µs/km), very low non-linearity, loss now < 0.2 dB/km | trading links, emerging long-haul; special splicing |
| Multicore (MCF) | 2–7 cores in one 125 µm cladding (space-division multiplexing) | new submarine systems; needs fan-in/fan-out devices |
| Few-mode | 2–6 guided modes as separate channels | research; mode-division multiplexing |
| Plastic optical fibre (POF) | 1 mm PMMA core, 650 nm visible, 100+ dB/km | home networks, automotive (MOST), industrial short links |
| Hard-clad silica (HCS) 200 µm | large core, robust | industrial, medical, sensing |
| Radiation-hardened, high-temperature | pure silica core, special coatings | nuclear, downhole, aerospace |
When types meet: splices and connectors between fibres
| Joint | Extra loss | Notes |
|---|
| G.652.D ↔ G.652.D | 0 | reference |
| G.652.D ↔ G.657.A1/A2 | ≤ 0.05 dB | designed to be compatible |
| G.652.D ↔ G.657.B3 | 0.1–0.3 dB | MFD mismatch; use splicer's dissimilar-fibre program |
| G.652 ↔ G.655 | 0.1–0.3 dB | MFD 9.2 vs 8.4–9.6 µm; OTDR shows a "gainer" one way |
| G.652 ↔ G.653 | 0.2–0.5 dB | plus the DSF's DWDM problem downstream |
| G.652 ↔ G.654.E | 0.1–0.3 dB | larger MFD; bridge fibre sometimes used |
| OM3 ↔ OM4 | ≈ 0 | same geometry; link bandwidth = weaker grade |
| OM1 (62.5) ↔ OM2–OM5 (50) | 2–4 dB in the 62.5→50 direction | avoid entirely |
| SMF ↔ MMF | modal noise / > 10 dB | never in a permanent link (Physical mismatches) |
Splicing technique for dissimilar fibres: Splicing and termination.
Choosing a fibre type
| Application | Recommended | Why |
|---|
| Data-centre intra-building ≤ 100–150 m | OM4 (OM5 if SWDM planned) or OS2 for future proofing | VCSEL optics cheap; SMF removes the reach ceiling |
| Campus, metro, access, PON | G.652.D (OS2) | universal, cheapest, every optic works |
| Indoor drops, terminal boxes, dense panels | G.657.A2 | bend tolerance without compatibility issues |
| New long-haul / 400G+ DWDM | G.654.E | loss and non-linearity headroom |
| Existing DWDM on legacy G.655 | keep, but check dispersion map for 100G+ | coherent DSP handles residual dispersion |
| Legacy G.653 plant | single-channel or coherent only | FWM ruins DWDM at 1550 |
| Ultra-low latency | hollow-core where affordable | 1.5 µs/km saved |
Identifying installed fibre
| Clue | How |
|---|
| Cable jacket print | manufacturer, type ("G.652.D", "SM 9/125", "OM3 50/125"), year, metre marks |
| Jacket colour (indoor) | yellow SMF; orange OM1/OM2; aqua OM3/OM4; lime OM5 (Labels & colour codes) |
| Documentation | as-built drawings, splice diagrams, test reports (Maintenance & restoration) |
| OTDR | backscatter coefficient differs by type; "gainers" mark transitions; 1383 nm attenuation reveals pre-LWP fibre |
| Dispersion / PMD test | chromatic dispersion analyser tells G.652 from G.653/G.655; PMD test for old plant |
| Installation era | pre-1995: expect water peak, higher PMD, possibly G.653 on long-haul routes |
In CodingBox
Modules are specified against fibre types through the compliance codes and length fields: a "10 km SMF" module assumes G.652-class dispersion and loss, an SR4 module its OM3/OM4 metres. CodingBox shows these fields so the module matches the fibre actually in the ground (Check transceiver, Memory map).