CodingBox مستندات

بسته‌بندی Chip-on-board (COB)

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Chip-on-board is a way of building the optical front end without individually packaged parts: the bare laser and photodiode dies are glued and wire-bonded directly onto the module's printed circuit board (or a small carrier), then covered by a lens array that couples them straight to the fibre ferrule. It is the reason parallel short-reach optics and active optical cables are as cheap and as dense as they are — and the reason they cannot be repaired.

Classic packaging vs COB

TO-can TOSA / ROSAChip-on-board
Laser / PDdie sealed in a hermetic metal can with a window and lens, one per channelbare die on the PCB or a ceramic/silicon carrier
Electrical connectioncan pins → flex circuit → PCBwire bonds (gold) or flip-chip bumps direct to PCB traces
Optical couplingcan lens → receptacle → connectorlens array over the die array → MT/MPO ferrule
Protectionhermeticencapsulant (glob-top, gel) or a lidnon-hermetic
Channels1 per can; 4 cans for a 4-lane module4, 8, 12 lanes in one array
Assemblymanual/semi-automatic alignment per canpick-and-place, passive alignment, wafer-level test
Cost at volumehigherlower
Repairreplace a canreplace the whole board / cable

Where COB is used

  • Parallel multi-mode optics40G SR4, 100G SR4, 200G/400G SR8, 800G SR8: a 4- or 8-element VCSEL array and a matching PIN array, each behind a moulded lens array, coupled to an MPO-12 or MPO-16 ferrule.
  • Active optical cables (AOC)a COB engine at each end with the fibre permanently attached; no receptacle at all, which removes coupling loss and cost.
  • On-board optics / COBOoptical engines mounted on the host board near the ASIC rather than in a pluggable cage.
  • Co-packaged optics (CPO)the same idea taken to its limit: optical dies packaged on the switch ASIC substrate.
  • Some single-mode designs use COB too (edge-emitting DFB/EML dies on a carrier with a planar lightwave circuit), but hermeticity concerns keep most single-mode optics in cans or in silicon-photonics packages.

VCSELs suit COB especially well: they emit perpendicular to the wafer, so an array can be tested before dicing, placed face-up on the board and coupled with a simple lens — no facet cleaving, no edge coupling (Laser types).

How a COB engine is built

  1. Substratethe module PCB itself, or a carrier (ceramic, silicon, glass) that is later soldered to the PCB; high-speed traces run to the driver and TIA ICs placed millimetres from the optical dies.
  2. Die attachVCSEL array, PIN array, driver and TIA dies fixed with conductive epoxy or AuSn solder; alignment fiducials on the substrate.
  3. Wire bondinggold wires from die pads to substrate pads; bond length is kept minimal because it is the main parasitic at 25–100G.
  4. Lens arraya moulded glass or polymer part with one lens per lane and alignment pins, placed by machine vision to the fiducials (passive alignment) or actively while monitoring coupled power.
  5. Encapsulationa transparent gel or glob-top over dies and bonds, or a lid; the optical path stays open through the lens.
  6. Ferrulean MT ferrule with the fibre ribbon plugs onto the lens array's guide pins, presenting an MPO interface at the module faceplate (or the fixed fibre of an AOC).
  7. Testonly after assembly: eye diagram and power per lane. A failed lane means a scrapped or down-binned engine.

Advantages

  • Cost at volumeno hermetic cans, one alignment step for eight lanes.
  • Densityeight lanes in the footprint of two cans; enables SR8 and AOC.
  • High-speed performanceshort bonds, driver and TIA next to the dies, low parasitics.
  • Thermal pathdies sit on the board copper rather than inside a can.
  • Automationpick-and-place and vision alignment scale to millions of units.

Drawbacks

  • Non-hermeticmoisture and contaminants reach the dies; VCSELs and PINs tolerate this well, edge-emitting lasers less so. Encapsulant quality decides long-term reliability.
  • No repaira single degraded VCSEL in an 8-lane array retires the whole module or cable; with an AOC that means re-pulling the cable (DAC vs AOC vs transceivers).
  • Yield riskalignment and bonding are done before the engine can be fully tested.
  • Multi-mode only in practicereach is bounded by the VCSEL/MMF combination.

COB and diagnostics

Because the eight lasers share one board and one thermal environment, they age together — but not identically. The classic COB failure is one lane of an SR4/SR8 array losing power while the others are fine, hidden by LACP or by a module-level "OK". Per-lane Tx bias and Rx power are the only early warning (Per-lane diagnostics, Failures). COB modules carry the standard SFF-8636 or CMIS memory on the same board; their identity is coded like any other module.

In CodingBox

CodingBox reads COB-based modules and AOC ends like any QSFP/QSFP-DD: per-lane DDM on the DDM screen shows the lane that is dying, and the EEPROM editor codes the identity a host expects — the one thing about a COB module that can be changed after it leaves the factory.

COB against TO-cans and box packages, with alignment tolerances and reliability: Optical packaging; COB engines as the ends of AOCs: Cable internals; the factory steps COB removes: Manufacturing & testing.


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