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From Silos to Systems: 2026 and Beyond
Welcome to the debut issue of I-Connect007 Magazine. This publication brings all of the pieces together from PCB design and fabrication for a closer alignment and a more integrated electronics manufacturing landscape.
The Automation Advantage
In this issue, we discover how AI, machine learning, and practical factory automation are reshaping PCB fabrication, and where these tools can meaningfully move your business forward.
Thank you, Columnists
This month, we give thanks to our columnists—the brilliant minds who share their expertise, experiences, and passion for the PCB industry. Meet the people behind the pages, learn what drives them, and discover their personal stories.
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UHDI Fundamentals: An Overview of UHDI Layer Types
January 2, 2026 | Anaya Vardya, American Standard CircuitsEstimated reading time: 1 minute
UHDI layer types include core, sequential lamination build-up; microvia; embedded and passive antennas and inductors; and embedded functional, protective, and hybrid rigid-flex layers. Together, they enable ultra-fine features, dense interconnects, high-frequency performance, and miniaturized system designs.
Sequential Lamination Build-up (SBU)
UHDI typically requires multiple SBU cycles, where thin dielectric and copper layers are drilled for microvias, plated, imaged, and laminated sequentially to build up to the final design from the inside out (Figure 1).
Embedded Passive Layers
Embedding passives directly into dielectric layers saves space and reduces parasitic effects, enhancing power and signal integrity (Figure 2).
Antennas and Inductors
Antennas and inductors are often integrated directly into UHDI substrates as embedded functional layers. This approach saves space, reduces parasitic losses, and improves performance compared to discrete components, which is critical for 5G/6G, IoT, wearable, and implantable electronics. Inductive layers are created by spiral or meander-shaped copper patterns within UHDI dielectric layers, and can be implemented as planar inductors, solenoidal geometries, or integrated magnetic-core structures. This technology reduces parasitic capacitance and enhances power integrity by lowering impedance in power distribution networks.
Thermal Layers
As UHDI enables ultra-compact, high-performance systems (AI, HPC, 5G/6G, medical implants), thermal management becomes critical. Thermal layers are embedded or integrated into UHDI stacks to dissipate heat from high-power chips or modules, maintain electrical and mechanical reliability, and enable long-term stability in ultra-miniaturized electronics.
To continue reading this article, which originally appeared in the December 2025 edition of Design007 Magazine, click here.
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UHDI Fundamentals: An Overview of UHDI Substrate Materials and Vias
11/13/2025 | Anaya Vardya, American Standard CircuitsThe rapid proliferation of 5G/6G communications, Internet of Things (IoT), high-performance computing (HPC), AI, and medical electronics has driven the need for increasingly compact, high-performance circuit packaging. UHDI, defined by feature sizes well below traditional HDI, addresses these demands by enabling ultra-fine lines, dense via interconnects, and embedded passive functionality. Understanding the materials and layering strategies in UHDI is essential for advancing both manufacturing and application design
Designers Notebook: Power and Ground Distribution Basics
10/29/2025 | Vern Solberg -- Column: Designer's NotebookThe principal objectives to be established during the planning stage are to define the interrelationship between all component elements and confirm that there is sufficient surface area for placement, the space needed to ensure efficient circuit interconnect, and to accommodate adequate power and ground distribution.
The Marketing Minute: Marketing With Layers
10/15/2025 | Brittany Martin -- Column: The Marketing MinuteMarketing to a technical audience is like crafting a multilayer board: Each layer serves a purpose, from the surface story to the buried detail that keeps everything connected. At I-Connect007, we’ve learned that the best marketing campaigns aren’t built linearly; they’re layered. A campaign might start with a highly technical resource, such as an in-depth article, a white paper, or a podcast featuring an engineer delving into the details of a process. That’s the foundation, the substance that earns credibility.
Connect the Dots: Evolution of PCB Manufacturing—Lamination
10/02/2025 | Matt Stevenson -- Column: Connect the DotsWhen I wrote The Printed Circuit Designer's Guide to...™ Designing for Reality, it was not a one-and-done effort. Technology is advancing rapidly. Designing for the reality of PCB manufacturing will continue to evolve. That’s why I encourage designers to stay on top of the tools and processes used during production, to ensure their designs capitalize on the capabilities of their manufacturing partner.
Driving Innovation: Mastering Panel Warpage
09/23/2025 | Simon Khesin -- Column: Driving InnovationDuring the complex and multi-step process of PCB fabrication, a panel's flatness is constantly at risk. A host of factors can introduce warpage, bending, and unevenness, presenting a fundamental challenge to achieving high-precision results. This deformation (sometimes referred to as “bow and twist”), even on a microscopic scale, can lead to critical defects during subsequent stages, such as component surface mounting (e.g., tombstoning, solder opens) and the PCB's long-term functional reliability.