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Interconnects Explained

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TECHNOLOGY EXPLAINER

What an Interconnect Is
— change the distance and you change the link, and the materials with it

A single bit travels across seven orders of magnitude: from a few micrometres of wiring inside a chip to several metres of optical fibre between machines. Along the way the conductor, the insulator and the physics that decides performance are all swapped out. Interconnect is the word for that whole hierarchy.

Built from primary sources published by TSMC Research, the UCIe Consortium, imec, NVIDIA and Broadcom / Last updated September 2026

Conceptual image of wiring growing from fine lines to thick lines and finally to optical fibre, level by level
Conceptual image (AI-generated). An impression of the interconnect hierarchy. It does not represent real dimensions, a real number of levels, or a real wiring layout.
What this article covers
  1. What an interconnect is (the short version)
  2. A map of the hierarchy — seven orders of magnitude
  3. A materials engineer's view (1): what limits you depends on the distance
  4. Measuring by density — pitch counts as a square
  5. TSMC's three pillars — chosen by application
  6. A materials engineer's view (2): the move to get rid of the bump
  7. What is still hard
  8. Glossary / Primary sources / Claim-to-source audit
How claims are labelled in this article

Sourced = a value stated in published material from a research institute or manufacturer (link given)
Our calculation = a figure this article derived, with the assumptions spelled out
Not yet confirmed = research-stage work with no confirmed production record
Anything beyond those — structural framing and readings of what the materials have to do — is marked as Commentary.

1. What an interconnect is (the short version)

An interconnect is any path a signal travels along, electrical or optical. Where the other articles in this series each take one way of joining things, this one takes the map of the whole thing.

  • How far it reaches: from wiring inside the chip to the fibre running between machines
  • What changes along the way: distance, cross-section, conductor, insulator, and the cause of loss
  • How it is measured: density (how many lines fit), speed, power, and reach
How this fits with the rest of the series

The individual joining methods already have their own articles. This one lines them up as a hierarchy.

  • Wires, bumps, solder → the Bonding and Bumps articles
  • Direct die-to-die joining → the Hybrid Bonding article
  • Wiring inside the package → the Interposer, RDL and Bridge articles
  • Wiring in the substrate → the Package Substrate and Via articles
  • Going optical → the Co-Packaged Optics article
  • Standardisation (UCIe) → the Chiplet article

2. A map of the hierarchy — seven orders of magnitude

Start by laying the distances out side by side.

One bit's path spans seven orders of magnitude (conceptual) Horizontal axis = approximate wiring length (log scale). Values are representative orders of magnitude. On-chip wiring 1 µm to a few mm (front end, BEOL) Die to die (stacked) A few µm (hybrid bonding) Die to die (side by side) 0.1 to a few mm (bumps, bridges, RDL) Inside the package mm to tens of mm (substrate wiring) On the board A few cm to tens of cm Box to box Over 1 m (optical) 1 µm10 µm100 µm 1 mm10 mm100 mm Every tenfold step in distance swaps the conductor, the insulator and the physics that sets performance (Section 3).
Fig. 1 Conceptual diagram (vector drawing). The position and length of each bar indicate the rough order of magnitude for that level, not the specification of any particular product. Real wiring lengths vary widely with the design, and the way the levels are divided up is this article's own framing.

3. A materials engineer's view (1): what limits you depends on the distance

Call it all "wiring" if you like, but over a short run and over a long run, completely different physics decides how well it performs.

What dominates is not the same over a short run and a long one Very short (tens of µm) die to die, stacked Limits: the number of connections - the run is short, so loss is small - what decides it is how many fit - so it comes down to pitch Key materials: bonding metals (Cu, solder, oxide), underfill Medium (mm to cm) in the package, on the board Limits: dielectric loss, skin depth - current crowds into the surface - energy is lost as heat in the resin - the compensating DSP burns power Key materials: low-Df resin, copper foil roughness (see Buildup Film) Long (tens of cm and up) between machines Limits: electricity cannot reach - loss is too large to compensate - so the signal is turned into light - where you convert becomes the issue Key materials: waveguides, fibre, bonding adhesives (see CPO article) NVIDIA reports that electrical loss of "up to 22 dB" on the conventional route becomes "~4 dB" with CPO. The same source puts power per interface at "often 30W" today against "as low as 9W" (detail in the CPO article).
Fig. 2 Conceptual diagram (vector drawing). The three bands and the reading of what limits each one are this article's own framing. The numbers in the bottom strip come from NVIDIA's published material [Source 4]. The distance boundaries are drawn for explanation; there is no sharp line between the bands.
Why this matters for materials engineers: what the material has to do changes with the level

Take the material requirements this series has covered and sort them into these three bands, and they fall into place neatly.

  • The very short runs: what is being asked for is joint quality and joint density. The UBM and the intermetallics of the Bumps article, the surface flatness of the Hybrid Bonding article — every one of them is an interface question, not a loss question
  • The middle runs: what is being asked for is the dielectric behaviour of the insulator. The Df of the Buildup Film article, the surface roughness of the Via article — this is where permittivity and loss finally take the lead role
  • The long runs: give up on electricity and move to materials that carry light: the transmittance, laser durability and refractive-index matching from the CPO article

All of it files under "interconnect materials", yet the properties being demanded belong to different disciplines. That is why a back-end materials supplier ends up with such a broad catalogue (this article's commentary).

Conceptual image of a path that widens in stages, from fine wiring to thick wiring and on to optical fibre
Fig. 3 Conceptual image (AI-generated). An impression of how a signal path is layered. It does not represent real wiring dimensions, a real number of levels, or a real structure.

4. Measuring by density — pitch counts as a square

Over the short runs, what decided performance was how many lines you could fit. And how many you can fit is set by the pitch of the connection points.

The UCIe Consortium defines a profile for each packaging class. Of UCIe-3D it says the profile is "optimized for hybrid bonding with a bump pitch functional for bump pitches as big as 10-25 microns to as small as 1 micron or less"Sourced.

Our calculation: halve the pitch and the density goes up fourfold

Lay the connection points out on a grid and the count per unit area goes as the inverse square of the pitchOur calculation.

  • Pitch 110 µm (assumed for the UCIe Standard Package) → about 83 per mm²
  • Pitch 45 µm (assumed for the UCIe Advanced Package) → about 494 per mm²
  • Pitch 10 µm → 10,000 per mm²
  • Pitch 1 µm (the floor quoted for UCIe-3D) → 1,000,000 per mm²

110 µm against 1 µm is a factor of 110 in pitch. In density it is 110², roughly 12,100 times.

Assumptions: a plain count for a square lattice packed with no gaps. In practice power and ground allocations, keep-out zones and test pads all intervene, so it never works out this way. The pitch values are the ones UCIe assumes in its profiles.

Tighten the pitch and density rises as the square (our calculation) Vertical axis = connection points per square mm (log scale) 101001,000 10,000100,0001,000,000 About 83About 494 10,0001,000,000 110 µm45 µm 10 µm1 µm Pitch of the connection points Note: a plain square-lattice count with no gaps. Power and ground allocation and keep-out zones are not considered.
Fig. 4 Our calculation. Values obtained as (1000/p)² per mm² for a square lattice of pitch p. They are not the connection counts of any particular product. The pitch values are the ones assumed in the UCIe Consortium profiles [Source 2] and representative figures based on the company disclosures covered in the Chiplet article.
Why this matters for materials engineers: the square law becomes pressure on the material

Halve the pitch and the density is four times higher. For a designer there is no better return on investment. So the pressure to tighten the pitch never lets up.

On the material side, though, halving the pitch does not make life merely four times harder. This series has shown why.

  • The Bumps article: as the joint shrinks, the intermetallic fraction rises sharply
  • The Underfill article: as the gap narrows, the filler can no longer get in
  • The Hybrid Bonding article: the flatness demanded of the surface moves to the nanometre scale
  • The Test article: there is nowhere left to land a probe needle

The design side gains as a square; the material side pays more than that. That asymmetry is what keeps back-end materials development under constant pressure (this article's commentary).

5. TSMC's three pillars — chosen by application

TSMC Research organises chip-to-chip interconnect into three pillars: "Silicon interposer, high-density fine-pitch fan-out RDL and bumpless bond are the three pillars of chip-to-chip interconnect on innovative advanced heterogeneous integration technologies (HIT)."Sourced

Each of them, it says, is tied to an integration technology — CoWoS, InFO and SoIC respectivelySourced.

TSMC's three pillars of chip-to-chip interconnect Silicon interposer → CoWoS - high interconnect density - high specific capacitance density - large reticle size Target: exascale HPC/AI → see Interposer article → see CoWoS article Fan-out RDL → InFO - high interconnect density - large reticle size in fan-out Target: cost and performance in HPC/network AI → see Fan-out and RDL articles Bumpless bond → SoIC - high 3D interconnect density - ultra-low bonding latency Target: energy efficient computing systems → see Hybrid Bonding article TSMC gives its selection criteria as PPACC = Power consumption, Performance, Area (form factor), Cost, Cycle time to market.
Fig. 5 Conceptual diagram (vector drawing). The three-pillar classification, the characteristics of each technology and the definition of PPACC all follow TSMC Research's published material [Source 1]. The links to the relevant articles in this series (the grey lines) are this article's own mapping.
Why this matters for materials engineers: PPACC has Cost and Cycle time in it

The criteria TSMC lists are PPACC — Power consumption, Performance, Area (form factor), Cost, Cycle time to marketSourced.

What is worth noticing is that two of the five are not technical performance at all: cost, and time to market.

So the three pillars are not sorted by "which one is best" but by "which one suits which application". The reason the highest-density option, bumpless SoIC, does not simply replace everything else is not that it performs worse, but that for some applications the cost and the lead time do not work.

The conclusion this series keeps arriving at — that materials do not converge on a single answer, seen in the four wire families, in sockets built differently for different jobs, in CUF pulling both hard and soft — comes straight out of the shape of these criteria (this article's commentary).

6. A materials engineer's view (2): the move to get rid of the bump

Close-up conceptual image of a flat surface with no protrusions, showing only circular copper pads in a regular array
Fig. 6 Conceptual image (AI-generated). An impression of a bumpless bonding surface. It does not represent real pad dimensions, pitch or layout.

One of TSMC's three pillars is bumpless bondSourced: make no protrusion at all, and join two flat surfaces directly.

On 2 March 2026 imec described its die-to-wafer (D2W) hybrid bonding as using "direct oxide-to-oxide links between the CMOS die and the package interface" to achieve "ultra-dense, high-bandwidth chip-to-chip links"Sourced.

At the same time it released a PDK for fine-pitch RDL, specified as "line widths and spaces down to 1.3 microns and microbump pitches as tight as 20 microns"Sourced. With it, imec says, a designer can "improve communication speed by up to 40% and reduce energy per bit as much as 15%, on a UCIe-Advanced die-to-die interface"SourcedNot yet confirmed.

Why this matters for materials engineers: erasing the joining material itself

Line up the steps this series has followed and the direction is unmistakable.

  • Wire: string metal across, one line at a time (the Bonding article)
  • Solder bump: a ball that melts and freezes (the Bumps article)
  • Copper pillar: cut the solder back to a cap on the tip (the Bumps article)
  • Hybrid bonding: drop the solder entirely and join with copper and oxide alone (the Hybrid Bonding article)
  • Bumpless: remove the protrusion itself

It is a history of stripping away, step by step, the extra material used to make the connection. And the more you strip away, the harsher the demands on what is left — with no solder there, nothing is absorbing the dimensional scatter any more. The CMP flatness requirement from the Hybrid Bonding article, dishing controlled to nanometres, is the price of that (this article's commentary).

What imec's RDL PDK shows, meanwhile, is that the organic side still has room to get finer: 1.3 µm lines and spaces, 20 µm microbump pitchSourced. That is finer still than the 2/2 µm covered in the Fan-out article. The road that erases the bump and the road that keeps thinning organic material are running in parallel (this article's commentary).

7. What is still hard

(1) There is a conversion cost between the levels

Every time a signal crosses from one level to the next, a conversion happens: chip wiring to bump, bump to substrate trace, substrate to connector, electrical to optical.

As the CPO article showed, NVIDIA describes the conventional route this way: "the data signal must traverse long electrical paths from the switch ASIC to the PCB, connectors and finally into the external transceiver before being converted to an optical signal. This segmented journey incurs substantial electrical loss"Sourced.

"Segmented journey" is the phrase that gets at it. The joins between levels are exactly where the loss is created. So improvement can go one of two ways: cut the number of levels, or move the joins closer together (this article's commentary).

(2) Push electricity further, or go optical sooner

Broadcom's published figures put the optical link power per 800G at 14 W for a pluggable module and 5.5 W for CPOSourced.

All that changed is where the conversion to light happens — moved from metres away to centimetres away. The number of conversions is the same. Only the electrical distance changed, and the power drops by close to sixty per cent (this article's commentary).

(3) The denser it gets, the more the heat piles up

Raising connection density means pushing more signals through the same area. More signals means more power burnt in that area.

TSMC lists "energy efficient computing systems" as a characteristic of SoICSourced precisely because raising density alone does not work: the energy per bit has to come down with it. The heat-removal discussion from the CoWoS and Flip Chip articles is the other face of interconnect density (this article's commentary).

Conceptual image of many stacked copper wiring layers running in orderly rows at different line widths
Fig. 7 Conceptual image (AI-generated). An impression of multilayer wiring. It does not represent a real layer count, real line widths or a real wiring density.
How this article adds up

Interconnect is the word that lets you re-sort everything this series has covered onto a single axis.

  • The shorter the run: what is asked for is density, and pitch counts as a square
  • In the middle: what is asked for is dielectric behaviour — Df and surface roughness
  • Over long runs: give up on electricity and move to materials that carry light

And performance is not the only criterion. TSMC's PPACC includes cost and time to marketSourced.

Which is why interconnect technology does not converge on one answer. Silicon interposers, fan-out RDL, bumpless bonding, organic substrates, optics — each keeps a place that suits its distance and its application. For a materials supplier that means not betting on one of them, but holding a different product for each level. That is the shape of this field (this article's commentary).

8. Glossary

Interconnect
The general term for the paths a signal travels, in levels running from inside the chip to between machines.
BEOL
Back End Of Line. The front-end steps that build the wiring after the transistors are formed.
Die-to-die (D2D)
Connecting dies to one another inside the same package.
Bumpless bond
Joining two flat surfaces directly, with no protrusion (no bump) formed.
Hybrid bonding
Bonding copper and the insulating oxide at the same time (covered in its own article).
D2W
Die to Wafer. Bonding singulated dies onto a wafer.
PPACC
Power consumption, Performance, Area, Cost, Cycle time to market. The selection criteria TSMC uses.
UCIe
Universal Chiplet Interconnect Express. The industry standard for die-to-die links (covered in the Chiplet article).
UCIe-S / -A / -3D
The profiles for standard packages, advanced packages and 3D stacking respectively.
Connection density
Connection points per unit area. It goes as the inverse square of the pitch.
Skin effect
The higher the frequency, the more the current crowds to the conductor surface. The effective cross-section shrinks and resistance rises.
Dielectric loss (Df)
The fraction of electrical energy turned into heat inside the insulator (covered in the Buildup Film article).
pJ/bit
The energy needed to send one bit. The efficiency metric for an interconnect.
Bandwidth density
The data rate that can be carried per unit length or per unit area.
RDL
Re-Distribution Layer, the redistribution wiring layer (covered in its own article).
PDK
Process Design Kit. The set of rules and models a designer needs in order to use a given manufacturing process.

9. Primary sources

  1. TSMC Research "Interconnect / Off-chip Interconnect" — research.tsmc.com
  2. UCIe Consortium "Specifications" — uciexpress.org
  3. imec "NanoIC opens access to first-ever fine-pitch RDL and D2W hybrid bonding interconnect PDKs", 2 March 2026 — imec-int.com
  4. NVIDIA "Scaling AI Factories with Co-Packaged Optics for Better Power Efficiency", technical blog — developer.nvidia.com
  5. Broadcom "TH5 51.2T Bailly CPO (Co-Packaged Optics)", March 2023 (PDF) — docs.broadcom.com

10. Claim-to-source audit

Claim in the textBasisLabel
That "Silicon interposer, high-density fine-pitch fan-out RDL and bumpless bond are the three pillars of chip-to-chip interconnect on innovative advanced heterogeneous integration technologies (HIT)." and that they map to CoWoS, InFO and SoIC respectively. That the silicon interposer offers "high interconnect density, high specific capacitance density, and large reticle size for exascale HPC/AI", fan-out "high interconnect density and large reticle size in fan-out for cost and performance in HPC/network AI", and SoIC "high 3D interconnect density with ultra-low bonding latency for energy efficient computing systems". That PPACC stands for "Power consumption, Performance, Area (form factor), Cost, Cycle time to market"TSMC Research, "Off-chip Interconnect"[Source 1] https://research.tsmc.com/english/research/interconnect/off-chip-interconnect/publish-time-1.htmlSourced
That UCIe 2.0 covers 3D packaging and that "UCIe-3D is optimized for hybrid bonding with a bump pitch functional for bump pitches as big as 10-25 microns to as small as 1 micron or less to provide flexibility and scalability."UCIe Consortium, "Specifications"[Source 2] https://www.uciexpress.org/specificationsSourced
Announced 2 March 2026. That the fine-pitch RDL PDK covers "line widths and spaces down to 1.3 microns and microbump pitches as tight as 20 microns". That D2W hybrid bonding achieves "ultra-dense, high-bandwidth chip-to-chip links" through "direct oxide-to-oxide links between the CMOS die and the package interface"imec press release, 2 March 2026[Source 3] https://www.imec-int.com/en/press/nanoic-opens-access-first-ever-fine-pitch-rdl-and-d2w-hybrid-bonding-interconnect-pdksSourced
That imec's PDK is said to "improve communication speed by up to 40% and reduce energy per bit as much as 15%" on a UCIe-Advanced die-to-die interface. The same release calls it an "exploratory version", and no production record has been confirmedimec press release, 2 March 2026[Source 3] https://www.imec-int.com/en/press/nanoic-opens-access-first-ever-fine-pitch-rdl-and-d2w-hybrid-bonding-interconnect-pdksNot yet confirmed
That on the conventional route "the data signal must traverse long electrical paths from the switch ASIC to the PCB, connectors and finally into the external transceiver before being converted to an optical signal. This segmented journey incurs substantial electrical loss". That electrical loss goes from "up to 22 dB" to "~4 dB", and power from "often 30W" to "as low as 9W"NVIDIA technical blog[Source 4] https://developer.nvidia.com/blog/scaling-ai-factories-with-co-packaged-optics-for-better-power-efficiency/Sourced
That optical link power per 800G is 14 W for a pluggable module and 5.5 W for CPOBroadcom, "TH5 51.2T Bailly CPO"[Source 5] https://docs.broadcom.com/doc/th5-51.2t-bailly-cpoSourced
The connection densities obtained as (1000/p)² per mm² for a square lattice of pitch p (110 µm to about 83, 45 µm to about 494, 10 µm to 10,000, 1 µm to 1,000,000), and the density ratio of about 12,100 between 110 µm and 1 µmOur calculation. A plain count for a square lattice packed with no gaps; power and ground allocation, keep-out zones and test pads are not considered. The pitch values are representative figures taken from the UCIe profile assumptions and company disclosuresOur calculation
That the levels in Fig. 1 and their wiring lengths (1 µm to several metres) indicate rough orders of magnitude rather than the specification of any product, and that the division into levels is itself this article's framingThis article's noteCommentary
The division of distance into three bands, each limited by the number of connections, by dielectric loss and skin effect, or by electricity not reaching at all, together with the materials mapped to each band. The observation that the design side gains as a square while the material side pays more than that. The reading that because PPACC includes cost and lead time the technology does not converge on one answer. The account of extra joining material being stripped away step by step, and the point that once the solder is gone nothing absorbs dimensional scatter. The framing that the joins between levels are where loss is created, so improvement means fewer levels or closer joins. The reading that only the electrical distance changed. The point that density and heat removal are two faces of the same thing. The mapping in Fig. 5 of TSMC's three pillars onto articles in this seriesCommentary by this article based on the published material. Not a position expressed by any of the companies or bodies citedCommentary
That Figs. 1, 2, 4 and 5 are drawings made for explanation rather than real observed images or engineering drawingsThis article's noteCommentary

Last updated 20 September 2026. Sources are limited to primary material (research pages from semiconductor manufacturers, published material from standards bodies, press releases from research institutes, and manufacturers' technical documents). Because the article includes its own framing of the hierarchy and its own reading of what the materials have to do, those parts are marked as Commentary and kept separate from sourced fact. All figures are explanatory concept graphics. Visual-overview figures are shown as AI-generated conceptual images, matching the Japanese edition. Vector drawings are retained where they carry quantitative values or precision-critical technical labels. AI-generated images do not depict real equipment, products, facilities, dimensions or exact cross-sections; replaced source SVG overview drawings remain in the HTML but are hidden.

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