Connectors & fibre types
The module is only half of a link; the other half is the glass and the connector that mates to it. Mismatched fibre or polish costs decibels silently, and a dirty ferrule is the single most common cause of a "bad module". This page is the field reference.
Fibre types
| Type | Core / cladding | Jacket colour | Bandwidth (850 nm) | Typical reach | Used with |
|---|---|---|---|---|---|
| OM1 | 62.5 / 125 µm | orange | 200 MHz·km | 1G 275 m; 10G 33 m | legacy campus |
| OM2 | 50 / 125 µm | orange | 500 MHz·km | 1G 550 m; 10G 82 m | legacy |
| OM3 | 50 / 125 µm | aqua | 2 000 MHz·km | 10G 300 m; 40/100G SR4 100 m | data centre |
| OM4 | 50 / 125 µm | aqua / violet (Erika) | 4 700 MHz·km | 10G 400 m; 100G SR4 100–150 m | data centre standard |
| OM5 | 50 / 125 µm | lime green | wideband 850–953 nm | as OM4 + SWDM4 | multi-wavelength MMF |
| OS1 / OS2 | 9 / 125 µm | yellow | — | 10 km … 80 km+ | all single-mode optics |
Single-mode subtypes: G.652.D (standard, low water peak — the default), G.657 (bend-insensitive, for tight indoor routing), G.655 (non-zero dispersion-shifted, legacy DWDM plant), G.654 (low-loss, submarine/long-haul).
Rules: never mix 50 and 62.5 µm multi-mode on one link (up to 4 dB loss at the joint); never plug a multi-mode module into single-mode fibre or vice versa — the link may come up marginally and fail later. Multi-mode reach is set by modal bandwidth, not attenuation; single-mode reach by attenuation and dispersion (Wavelength bands).
Connectors
| Connector | Ferrule | Where |
|---|---|---|
| LC | 1.25 mm, duplex or simplex | the standard on SFP/SFP+/SFP28, QSFP LR4/FR4, 400G FR4 |
| SC | 2.5 mm, push-pull | GBIC, PON (SC/APC), patch panels, older plant |
| FC | 2.5 mm, screw-on | test equipment, legacy telecom |
| ST | 2.5 mm, bayonet | legacy multi-mode |
| E2000 | 2.5 mm with shutter | European telecom, APC |
| MPO / MTP | 12/16/24-fibre array | SR4/SR8/DR4/DR8/PSM4 parallel optics; MTP is a premium MPO variant |
| SN / CS | dual 1.25 mm, very small | 400G/800G breakout (2×LC in one QSFP-DD faceplate) |
| MDC | dual 1.25 mm, very small | high-density 400G/800G |
| MU | 1.25 mm | legacy telecom |
Polish: UPC vs APC
| Polish | End-face | Boot colour | Return loss | Use |
|---|---|---|---|---|
| PC / UPC | flat / ultra-polished, 0° | blue (SMF), beige/black (MMF) | ≥ 50 dB | Ethernet, FC, data centre |
| APC | angled 8° | green | ≥ 60 dB | PON, DWDM, analogue video, 400G DR4/800G DR8 MPO |
Never mate UPC to APC — the angled and flat faces cannot touch; expect several dB of loss and possible end-face damage. High-speed single-mode MPO (DR4/DR8) is APC, and InfiniBand NDR insists on it (InfiniBand optics).
MPO essentials
- Pinned vs unpinned — a pinned (male) connector mates only with an unpinned (female); transceivers are usually pinned, so patch cords are female–female.
- Fibre count — MPO-12 for SR4/DR4 (8 fibres used), MPO-16 for SR8/DR8, MPO-24 for legacy SR10.
- Polarity — Type A (straight), B (reversed), C (pair-flipped) cabling; a wrong polarity mix gives Tx-to-Tx and no link. Standardise on one method per site.
- Key up / key down and APC angle orientation matter — follow the labels.
Cleaning and inspection
One 2–5 µm particle adds 0.5–2 dB; a clean LC pair costs 0.1–0.2 dB. Inspect → clean → re-inspect, dry cleaning after wet; one-click cleaners for LC/SC, dedicated MPO cleaners for arrays. Details and the diagnostic ladder: Link flapping, CRC & dirty connectors.
Cables with fixed ends
DAC (copper) and AOC (active optical) cables carry module ends permanently attached — no connector to clean, but nothing to replace except the whole cable (DAC vs AOC, Copper & DAC).
What the module memory says
The connector type is a byte in the identity block (SFF-8472 A0h byte 2, SFF-8636 byte 130), coded per SFF-8024: 07h = LC, 01h = SC, 0Ch = MPO 1×12, 0Dh = MPO 2×16, 21h/22h = copper pigtail/RJ45, 23h = no separable connector (AOC/DAC). Length fields (bytes 14–19) declare the fibre types the module is rated for. CodingBox decodes both on the Check transceiver screen; see the Memory map quick reference.
What goes wrong when fibre, polish or polarity do not match — and how it shows up — is in Physical-layer mismatches.