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| cmos_manufacturing [2026/08/21 13:05] – [MANUFACTURING STEPS] mathieu.ludden.ext | cmos_manufacturing [2026/09/25 11:03] (current) – [5.Microlens formation] mathieu.ludden.ext | ||
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| === 2.9. Anneal === | === 2.9. Anneal === | ||
| A final thermal step activates all the implants and repairs the crystal lattice damage from the various implantation steps. | A final thermal step activates all the implants and repairs the crystal lattice damage from the various implantation steps. | ||
| + | |||
| + | ==== 3. Interconnect formation (back-end-of-line) ==== | ||
| + | Multiple layers of metal wiring (copper or aluminum) and dielectric are built up to connect transistors and route signals off the pixel array. In sensors using front-side illumination, | ||
| + | |||
| + | === 3.1. Light shields | ||
| + | A metal layer is often deliberately placed as an opaque block over non-photosensitive structures (the floating diffusion, the transistors, | ||
| + | |||
| + | === 3.2. Global shutter storage shielding (optional) | ||
| + | Sensors with a global shutter need a charge-storage node shielded almost perfectly from light during readout, since even a tiny light leak would corrupt the stored frame with new photo-charge. This can require dedicated extra metal layers with very high shielding effectiveness. | ||
| + | |||
| + | === 3.3. Reflective layers | ||
| + | In some BSI designs, a metal layer placed behind the photodiode reflects unabsorbed long-wavelength light back up for a second absorption pass, boosting red/ | ||
| + | |||
| + | === 3.4. Final planarization === | ||
| + | Because the color filter and microlens sit directly on top of this stack, the last dielectric layer needs to be extremely flat — not just electrically fine, but optically flat across the whole array. | ||
| + | |||
| + | ==== 4. Color filter array deposition (TBD) ==== | ||
| + | === 4.1. Planarization === | ||
| + | === 4.2. Coat resist === | ||
| + | === 4.3. Photoresist exposure === | ||
| + | === 4.4. Develop === | ||
| + | === 4.5. Cure === | ||
| + | === 4.6. Repeat process for each color === | ||
| + | === 4.7. Overcoat === | ||
| + | === 4.8. Inspect === | ||
| + | |||
| + | ==== 5. Microlens formation ==== | ||
| + | The fabrication methods for microlens arrays are categorized into two primary groups: **direct methods** and **indirect methods** [(fabrication_microlenses_array > [[https:// | ||
| + | |||
| + | === Direct methods === | ||
| + | |||
| + | Direct methods do not require fabricating a mask or a mold insert containing 3D concave microstructures. The geometry of the lens is established directly, typically exploiting surface tension while the material is in a liquid or thermoplastic state, producing a super smooth surface finish with an arithmetic average roughnes $R_a < 1\text{ nm}$. | ||
| + | * **Thermal Reflow Method**: A photoresist layer is coated onto a substrate and exposed to UV light through a mask with circular array patterns. After development, | ||
| + | * Microplastic Hot Embossing: A silicon mold insert featuring circular openings is first fabricated using deep reactive ion etching (DRIE). A polymer substrate is placed between heating plates and the mold insert, where external pressure is applied above the material' | ||
| + | * Microdroplet Jetting (Inkjet Printing): Droplets of a UV-polymerizable liquid are ejected from a nozzle onto a substrate. Upon reaching the substrate, they are exposed to UV light, solidifying into smooth spherical shapes | ||
| + | |||
| + | === Indirect methods === | ||
| + | |||
| + | Indirect methods rely on first fabricating a concave mold, from which the final microlens arrays are duplicated using replication techniques such as injection molding, hot embossing, or UV molding. These methods provide precise geometric control. Two main technological approaches are used to manufacture the concave matrices : | ||
| + | * MEMS-Based Technologies: | ||
| + | * Direct writing techniques, including femtosecond laser wet etching, focused ion beam (FIB) writing, and electron beam writing, can also directly generate concave patterns on the substrate. | ||
| + | * Ultraprecision Machining Technologies: | ||
| + | |||
| + | ==== 6. Backside illumination (BSI) processing (TBD) ==== | ||
| + | ==== 7. Wafer stacking (for advanced sensors) (TBD) ==== | ||
| + | ==== 8. Packaging and test (TBD) ==== | ||
| + | |||
| + | |||
| + | |||
| + | ===== Process line 2 ===== | ||
| + | |||
| + | The complete process line for manufacturing a **Back-Side-Illuminated (BSI) CMOS Image Sensor (CIS)** incorporating a **Pinned Photodiode (PPD)** follows a multi-stage flow combining Front-End/ | ||
| + | |||
| + | --- | ||
| + | |||
| + | ====== BSI CMOS Image Sensor Fabrication Process ====== | ||
| + | |||
| + | ===== 1. Substrate Selection & Frontside Processing (FEOL / BEOL) ===== | ||
| + | |||
| + | * **Starting Substrate**: | ||
| + | * **Pinned Photodiode (PPD) Integration**: | ||
| + | * **Transistor & BEOL Fabrication**: | ||
| + | |||
| + | ---- | ||
| + | |||
| + | ===== 2. Wafer-Level Stacking & Direct / Hybrid Bonding ===== | ||
| + | |||
| + | * **Surface Planarization**: | ||
| + | * **Wafer Stacking**: The sensor wafer is flipped face-down and bonded to an ASIC circuit wafer or handle substrate. Stacking is accomplished via low-temperature direct dielectric bonding or Cu/ | ||
| + | |||
| + | ---- | ||
| + | |||
| + | ===== 3. Backside Substrate Thinning ===== | ||
| + | |||
| + | * **Mechanical Backgrind**: | ||
| + | * **Selective Wet Etching**: Chemical wet etching removes the remaining p< | ||
| + | |||
| + | ---- | ||
| + | |||
| + | ===== 4. Backside Isolation & Interface Passivation ===== | ||
| + | |||
| + | * **Backside Deep Trench Isolation (BDTI)**: High-aspect-ratio deep trenches are etched from the backside between individual pixels to eliminate optical and electrical crosstalk. | ||
| + | * **Defect Passivation via High-k Films**: Atomic Layer Deposition (ALD) deposits a high-k dielectric stack (such as Al< | ||
| + | * **Gap-Fill & Optical Grids**: Trenches are filled with low-stress PECVD oxide, planarized by CMP, and capped with patterned backside metal grids (e.g., tungsten) to restrict optical light leakage. Optional microscopic pyramid arrays may be etched into the surface to induce total internal reflection and boost quantum efficiency (QE). | ||
| + | |||
| + | ---- | ||
| + | |||
| + | ===== 5. Backside Optical Integration & Packaging ===== | ||
| + | |||
| + | * **Anti-Reflection Coating (ARC) & Metal Shielding**: | ||
| + | * **Color Filter Array (CFA)**: Organic primary color filters (e.g., Bayer RGGB pattern) are lithographically aligned and patterned directly on the thinned backside surface. | ||
| + | * **Microlens Array Alignment**: | ||
| + | * **Bond Pad Etching**: Through-Silicon Vias (TSVs) or bond pad openings are etched through the residual silicon substrate to expose electrical contacts for final packaging (CLCC, CSP, or TSV-based CameraCube). | ||
| ==== Through SIlicon Vias (TSV) ==== | ==== Through SIlicon Vias (TSV) ==== | ||