SemiconFab HBM 3D
Part Title
Description
HBM3E / HBM4 (12-Hi · 3D TSV) | 1024-bit Bus · >1.2 TB/s
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步骤 01 / 10 底座控制芯片制造
01

逻辑基模 (Base / Buffer Die) 制造与超高密度测试

使用高良率先进 CMOS 逻辑制程制造 HBM 底层缓冲逻辑晶圆(Base Die / Buffer Die)。芯片内置高速 DFI 物理层控制器(PHY)、冗余修复逻辑、内建自测试(BIST / IEEE 1500)引擎,并制备正面上表面高密度着陆触垫(Landing Pads)。

制造机台 (Tool)
先进逻辑步进光刻机 + 金属互连沉积集群
ASML Twinscan NXT / Applied Materials Endura
材料与结构 (Material)
单晶硅衬底 + Cu/Low-k 互连层 + 钝化绝缘层
晶圆直径: 300mm | 逻辑底模厚度: ~775μm | 1024-bit 宽总线
工艺核心目的与机理

充当整座 HBM 立体堆叠的指挥中枢与物理基底,将上层垂直贯穿的数千条 TSV 信号进行转接、重定时、差分驱动并提供 BIST 自检,实现与主机 GPU/CPU 的超高速接口对接。

HBM3E / HBM4 High Bandwidth Memory 3D Stacking & Advanced Packaging: 10-Step Industrial Engineering Breakdown

This interactive digital twin details the complete industrial fabrication sequence of advanced HBM3E and HBM4 (High Bandwidth Memory) semiconductors using TSV (Through-Silicon Via), dense microbumps, MR-MUF / TC-NCF vertical stacking, and 2.5D CoWoS silicon interposer integration.

10-Step HBM Semiconductor Fabrication Sequence

  1. Step 1: Logic Base Die (Buffer Die) Fabrication & BIST Testing

    Advanced CMOS logic fabrication constructs the Base Die wafer with high-speed DFI PHY, BIST self-repair controllers, and dense landing pads.

    Equipment: Advanced Logic ArFi/EUV Scanner + Metallization Cluster (ASML Twinscan NXT / AMAT Endura). Materials: P-Type Single-Crystal Si + Cu/Low-k Interconnects + Passivation.

  2. Step 2: DRAM Core Wafer TSV Deep RIE & Void-Free Copper Plating

    Deep Reactive Ion Etching (DRIE) punches thousands of blind TSVs (~55μm deep, ~6μm diameter), lined with SiO2, barrier/seed sputtered, and filled with electroplated copper.

    Equipment: High-Aspect-Ratio Silicon DRIE Etcher + TSV ECD Copper Plater (Lam Research Syndion / AMAT Raider ECD). Materials: Electroplated Copper (Cu) Pillars + SiO2 Liner + Ta/Ti Barrier.

  3. Step 3: Front-Side Redistribution Layer (RDL) & Microbump Metallization

    Multi-layer fine-pitch Cu RDL routing and electroplating ultra-dense microbumps (Cu pillar + Ni barrier + Sn-Ag solder cap) at 25-35μm pitch.

    Equipment: Advanced Packaging Stepper + Multi-Chamber ECD Bump Plater (Canon FPA-5520iV / Lam Research SABRE 3D). Materials: Cu Pillar (~15μm) + Ni (~2μm) + Lead-Free Sn-Ag Solder Cap (~8μm).

  4. Step 4: Temporary Carrier Wafer Bonding with Laser-Releasable Adhesive

    Spin-coating laser-releasable adhesive over front microbumps and vacuum-bonding the active DRAM wafer to a rigid optical glass carrier for mechanical support.

    Equipment: High-Precision Temporary Wafer Bonder + Adhesive Coater (EV Group EVG 850 / SUSS MicroTec XBC300). Materials: Laser-Releasable Polymer Adhesive + Rigid Borosilicate Glass Carrier.

  5. Step 5: Extreme Backside Mechanical Grinding & Ultra-Precision CMP Thinning

    Coarse and fine diamond wheel grinding followed by stress-relief CMP, thinning the DRAM wafer down to ~30-45μm.

    Equipment: Ultra-Precision In-Line Grinder + CMP Polish Station (DISCO DFG8560 / Accretech DGP8761HC). Materials: Silicon Bulk Substrate + Ultra-Fine Vitrified Diamond Wheel + Polishing Slurry.

  6. Step 6: Backside TSV Silicon Recess Reveal Etch & Passivation

    Selective SF6 plasma recessing silicon by ~1.5μm to reveal copper TSV tips, followed by low-temp PECVD passivation and touch CMP.

    Equipment: Low-Temp Silicon Recess Etcher + Low-Temp PECVD + Touch CMP (Lam Research Versys / SPTS Rapier / AMAT Reflexion). Materials: Protruding Copper Tips (~1.5μm) + Low-Temp SiNx/SiO2 Passivation.

  7. Step 7: Backside UBM Metallization & Excimer Laser Debonding

    Patterning Ti/Cu/Ni/Au UBM pads on TSV tips, 308nm excimer laser debonding of the glass carrier, and stealth laser dicing into Known Good Dies (KGD).

    Equipment: Excimer Laser Debonder + Plasma Clean Station + Stealth Laser Dicer (SUSS MicroTec XDD300 / DISCO DFL7362 / EVG 850DB). Materials: Backside UBM Landing Pads (Ti/Cu/Ni/Au) + Cleaned KGD Silicon Dice.

  8. Step 8: High-Precision 8-Hi / 12-Hi / 16-Hi 3D Die Stacking & Bonding

    Sub-micron pick-and-place stackers aligning DRAM KGD dies sequentially atop the Base Die, bonding via TC-NCF or MR-MUF with void-free joints.

    Equipment: Sub-Micron 3D Flip-Chip Die Bonder / Thermal Compression System (Toray / Hanmi Semiconductor DUAL TC Bonder / Besi Datacon 8800). Materials: 8-Hi to 16-Hi Stacked DRAM Dies + Sn-Ag Joints + NCF / MUF Underfill.

  9. Step 9: Wafer-Level Epoxy Molding Compound (EMC) & Top-Die Heat Polish

    Vacuum injection of high-thermal-conductivity silica-filled EMC, followed by back grinding to expose the top raw silicon die for direct heatsink contact.

    Equipment: Wafer-Level Vacuum Compression Molder + Precision Back Grinder (TOWA YPM Series / APIC Yamada / DISCO DFG8560). Materials: High Thermal Conductivity Silica-Filled EMC + Bare Top Si Heat Spreader.

  10. Step 10: 2.5D Silicon Interposer Integration (CoWoS) & BGA Ball Mount

    Mounting the HBM cube alongside the host GPU onto a passive Silicon Interposer with sub-micron wiring, substrate bonding, and BGA solder ball attachment.

    Equipment: Chip-on-Wafer (CoW) Bonder + BGA Ball Mounter + System Reflow Furnace (Shinkawa / Besi / Kulicke & Soffa / ASMPT). Materials: Passive Si Interposer (CoWoS) + SAC305 Solder Balls + Organic ABF Substrate.

Frequently Asked Questions (FAQ) on HBM 3D Memory Fabrication

Why is HBM essential for AI GPU accelerators compared to GDDR or DDR?
Traditional DDR5 and GDDR6 use narrow 32-bit to 64-bit buses operating at extreme clock frequencies, encountering strict pin count and trace length power limits. HBM stacks DRAM dies vertically directly above a logic controller, utilizing an ultra-wide 1024-bit interface per stack with thousands of short, low-capacitance TSVs. This achieves >1.2 TB/s per stack (over 3-4x higher than GDDR6) at significantly higher energy efficiency (<3-4 pJ/bit).
What is the difference between TC-NCF and MR-MUF in HBM stacking?
TC-NCF (Thermal Compression with Non-Conductive Film) applies a solid micro-film before each die is pressed with heat and force; it requires high pressure per die and can trap voids or increase thermal resistance as layers exceed 12-Hi. MR-MUF (Mass Reflow Molded Underfill), pioneered by SK Hynix, stacks all dies simultaneously with temporary flux, melts all microbumps in a single mass reflow furnace, and injects liquid epoxy molding compound (EMC) under vacuum. MR-MUF reduces thermal resistance by over 30% and significantly enhances 12-Hi and 16-Hi manufacturing yields.
How does HBM4 evolve with Hybrid Bonding and customized Base Dies?
HBM4 expands the memory bus from 1024 bits to 2048 bits and enables custom Logic Base Dies manufactured on advanced foundry nodes (such as TSMC 3nm/5nm or Intel 18A). Furthermore, HBM4 introduces direct Cu-Cu Hybrid Bonding, eliminating microbumps entirely and reducing vertical die-to-die spacing below 1-2μm, boosting density and thermal dissipation for 16-Hi and 20-Hi configurations.