Establish why the design needs HDI
Begin with the component land pattern, package pitch, board area and required routing channels. Sketch the escape from the most constrained package. Determine whether ordinary through vias block channels that could be recovered using shorter layer connections.
A smaller board is not the only possible objective. The design may need reduced via obstruction, a more direct connection or access to a dense inner row. Conversely, a placement change or additional conventional routing layer may solve the problem without specialized buildup.
Record the limitation and compare alternatives before detailed routing. This keeps the technology choice tied to a functional requirement. An HDI construction should offer a clear benefit that justifies its added process definition and verification needs, rather than being selected because it appears more advanced.
Describe the interconnect structure explicitly
A through via connects across the board thickness, while blind and buried connections serve selected layers. Microvias are associated with short, small interconnections and buildup structures, but the exact geometry and process must be agreed. A diameter alone does not define the complete structure.
Provide a layer-to-layer connection map. Identify which connections are stacked, staggered or connected to buried structures, and whether filling and planarization are required. Different topologies can create different processing and reliability questions even when the layer count is identical.
The table captures information needed for a useful review. Avoid ambiguous shorthand without a cross-section. A reviewer should be able to trace each electrical connection through the proposed structure and understand the sequence needed to create it.
| Decision | What to define | Why it matters |
|---|---|---|
| Package escape | Land pattern and blocked channels | Shows why HDI is being considered |
| Via map | Exact connected layer pairs | Defines the electrical structure |
| Topology | Stacked, staggered and buried interfaces | Affects route and reliability questions |
| Pad surface | Fill and cap expectations | Coordinates fabrication with assembly |
| Evidence | Thermal exposure and acceptance tests | Supports the actual use conditions |
Connect the buildup to the manufacturing sequence
Sequential buildup can require repeated lamination, drilling and metallization stages. Each stage depends on the construction beneath it and can impose requirements on material, registration and surface preparation. The number of copper layers alone does not reveal this sequence.
A via placed directly above another filled structure is different from an offset connection joined by a short trace. Both need a routing and reference plan, but they do not necessarily share the same process assumptions. Review the proposed topology with the manufacturer before treating it as interchangeable.
Keep the design rules tied to the approved construction. If the buildup changes, revisit pad sizes, clearances, layer connections and package escape. A local CAD edit can create a connection that looks legal electrically while requiring a different manufacturing route.
Plan reliability evidence for the actual topology
Microvia interfaces can have failure mechanisms that are not fully characterized by a room-temperature connectivity check. IPC has published concerns about latent weak interfaces in certain microvia structures. That supports a need for application-appropriate verification, not a blanket claim that all microvias are unreliable.
Define the expected assembly exposure, rework and operating cycles. Then agree which construction evidence and tests are appropriate for the proposed topology. Representative coupons and stress-based measurements may be relevant, depending on the product and acceptance requirements.
Do not infer qualification from a generic capability statement or from a different board’s successful use. The material, geometry, interface arrangement and process all matter. Ask what evidence applies to the exact structure being proposed and identify any remaining validation responsibility on the product team.
Keep signal, power and assembly needs aligned
HDI can open routing channels, but signal reference continuity still needs attention. Examine the transition through each layer connection and the available return path. Shorter vias do not automatically solve discontinuities caused by plane voids or poorly planned reference changes.
If a connection lies in a component pad, coordinate the fill, cap and surface requirements with assembly. An open or uneven feature can affect solder deposition and joint formation. The assembly land pattern and the fabrication structure must describe compatible expectations.
Also review power distribution through small connections. Do not assume that the smallest available interconnect can carry every load. Identify current paths and thermal constraints, then evaluate suitable geometry. The purpose of HDI is to create a workable interconnect system, not to minimize every feature regardless of function.
Prepare a review package before routing is locked
Send the proposed stackup, package data, escape sketch, via map and intended board thickness. Mark any via-in-pad features and required filling. Include material restrictions, critical interfaces and the expected assembly and operating conditions.
Ask for feedback on feasible topology, routing rules, processing dependencies and evidence needed at acceptance. If an alternative construction is proposed, compare its effect on the entire package escape before accepting it. A change that removes one buildup stage may require a different routing strategy.
Use the checklist to identify missing inputs, then request an engineering review. This page does not establish available microvia dimensions, buildup counts or qualified production capability. Those details require explicit confirmation for the design and quantity. Preserve the reviewed cross-section with the release so later revisions cannot silently change the interconnect structure.
HDI PCB Engineering Review readiness checklist
Use this checklist to prepare your inquiry. These selections stay in this browser and do not submit a project.
Frequently asked questions
Does every fine-pitch package require HDI?
No. Package geometry, board area, layer count and routing strategy all matter. Review the escape pattern before deciding which via technology is necessary.
Are stacked and staggered microvias interchangeable?
No. They differ in geometry and process dependencies, and the change can affect routing and reliability assessment. Confirm the topology explicitly.
Does continuity testing prove microvia endurance?
No. It establishes connectivity under the test conditions. Application-appropriate evidence may need to address assembly exposure and thermal cycling of the actual structure.
Can an HDI board also use through vias?
Yes, mixed interconnect structures are possible in principle. Define every connection type in the proposed cross-section and confirm the complete manufacturing route.
What should be reviewed before package routing?
Provide the land pattern, intended layer connections, stackup and operating conditions. Confirm the feasible rules and topology before committing the detailed escape to unverified assumptions.