CodingBox Documentation

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

TypeNameMFD at 1310 / 1550 nmZero-dispersion λ₀D at 1550 nmAttenuation 1310 / 1550Bend radius (min)Use
G.652.A/Bstandard SMF (legacy)8.6–9.5 / ~10.4 µm1300–1324 nm≈ 17 ps/(nm·km)≤ 0.5 / ≤ 0.4 (B: 0.35 / 0.22); water peak at 138330 mmpre-2000 plant; avoid E-band
G.652.C/Dlow-water-peak SMF — the default8.6–9.2 / ~10.4 µm1300–1324 nm≈ 17≤ 0.4 / ≤ 0.3 (typ. 0.33 / 0.19); 1383 ≤ 0.430 mmeverything from access to 400ZR; full CWDM band usable
G.653dispersion-shifted (DSF)~8 µm≈ 1550 nm≈ 00.35 / 0.2230 mm1990s single-channel 1550 long haul; unsuitable for DWDM (four-wave mixing)
G.654.A–Ecut-off shifted, low loss, pure-silica core~10.5–12.5 µm≈ 1300≈ 17–22— / 0.15–0.1930 mmsubmarine (A–D); G.654.E terrestrial 400G+ long haul (large effective area, low nonlinearity)
G.655non-zero dispersion-shifted (NZ-DSF: LEAF, TrueWave)~8.4–9.6 µmoutside C-band+2 … +10 (or negative)0.35 / 0.2230 mm10G DWDM long haul of the 2000s; small D suppresses FWM while limiting dispersion
G.656wideband NZ-DSF~8 µm< 1460+2 … +14 over 1460–16250.35 / 0.2230 mmS+C+L band DWDM
G.657.A1 / A2bend-insensitive, G.652.D-compatible8.6–9.2 µmas G.652.D≈ 17as G.652.D10 / 7.5 mmFTTH drops, indoor, dense panels; splices to G.652 with ≤ 0.05 dB
G.657.B2 / B3bend-insensitive, not necessarily G.652-compatible6.3–9.5 µmas G.652.D7.5 / 5 mmin-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 60793-2-10TIACoreEMB 850 nmOFL bandwidth 850 / 1300Attenuation 850 / 1300
OM1A1b492AAAA62.5 µm— (200 MHz·km OFL)200 / 5003.5 / 1.5
OM2A1a.1492AAAB50 µm— (500 OFL)500 / 5003.5 / 1.5
OM3A1a.2492AAAC50 µm2 0001 500 / 5003.0 / 1.5
OM4A1a.3492AAAD50 µm4 7003 500 / 5003.0 / 1.5
OM5A1a.4492AAAE50 µm4 700 (850), 2 470 (953)3 500 / 5003.0 / 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

FibreWhat is specialWhere 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 nminside EDFAs (Amplification)
Polarization-maintaining (PM)stress rods (PANDA, bow-tie) keep polarization axescoherent transceiver internals, sensors, pump combiners
PhotosensitiveGe/B doping for UV-written Bragg gratingsFBG filters, DCMs, sensors
Large-effective-areaA_eff 110–150 µm² vs 80G.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/kmtrading 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-mode2–6 guided modes as separate channelsresearch; mode-division multiplexing
Plastic optical fibre (POF)1 mm PMMA core, 650 nm visible, 100+ dB/kmhome networks, automotive (MOST), industrial short links
Hard-clad silica (HCS) 200 µmlarge core, robustindustrial, medical, sensing
Radiation-hardened, high-temperaturepure silica core, special coatingsnuclear, downhole, aerospace

When types meet: splices and connectors between fibres

JointExtra lossNotes
G.652.D ↔ G.652.D0reference
G.652.D ↔ G.657.A1/A2≤ 0.05 dBdesigned to be compatible
G.652.D ↔ G.657.B30.1–0.3 dBMFD mismatch; use splicer's dissimilar-fibre program
G.652 ↔ G.6550.1–0.3 dBMFD 9.2 vs 8.4–9.6 µm; OTDR shows a "gainer" one way
G.652 ↔ G.6530.2–0.5 dBplus the DSF's DWDM problem downstream
G.652 ↔ G.654.E0.1–0.3 dBlarger MFD; bridge fibre sometimes used
OM3 ↔ OM4≈ 0same geometry; link bandwidth = weaker grade
OM1 (62.5) ↔ OM2–OM5 (50)2–4 dB in the 62.5→50 directionavoid entirely
SMF ↔ MMFmodal noise / > 10 dBnever in a permanent link (Physical mismatches)

Splicing technique for dissimilar fibres: Splicing and termination.

Choosing a fibre type

ApplicationRecommendedWhy
Data-centre intra-building ≤ 100–150 mOM4 (OM5 if SWDM planned) or OS2 for future proofingVCSEL optics cheap; SMF removes the reach ceiling
Campus, metro, access, PONG.652.D (OS2)universal, cheapest, every optic works
Indoor drops, terminal boxes, dense panelsG.657.A2bend tolerance without compatibility issues
New long-haul / 400G+ DWDMG.654.Eloss and non-linearity headroom
Existing DWDM on legacy G.655keep, but check dispersion map for 100G+coherent DSP handles residual dispersion
Legacy G.653 plantsingle-channel or coherent onlyFWM ruins DWDM at 1550
Ultra-low latencyhollow-core where affordable1.5 µs/km saved

Identifying installed fibre

ClueHow
Cable jacket printmanufacturer, 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)
Documentationas-built drawings, splice diagrams, test reports (Maintenance & restoration)
OTDRbackscatter coefficient differs by type; "gainers" mark transitions; 1383 nm attenuation reveals pre-LWP fibre
Dispersion / PMD testchromatic dispersion analyser tells G.652 from G.653/G.655; PMD test for old plant
Installation erapre-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).

How these fibres are produced and why their tolerances are what they are — preforms, drawing, coating, proof test: How fibre is made; the documents behind every designation, from ITU-T G.65x to IEC categories and national standards: Standards map.