| CADモデル: | View CAD Model |
| Pkg. Type: | VFQFPN |
| Pkg. Code: | NLG32 |
| Lead Count (#): | 32 |
| Pkg. Dimensions (mm): | 5.0 x 5.0 x 0.9 |
| Pitch (mm): | 0.5 |
| Moisture Sensitivity Level (MSL) | 3 |
| Pb (Lead) Free | Yes |
| ECCN (US) | EAR99 |
| HTS (US) | 8542.39.0090 |
| Lead Count (#) | 32 |
| Carrier Type | Reel |
| Moisture Sensitivity Level (MSL) | 3 |
| Qty. per Reel (#) | 2500 |
| Qty. per Carrier (#) | 0 |
| Pb (Lead) Free | Yes |
| Pb Free Category | e3 Sn |
| Temp. Range (°C) | -40 to 85°C |
| Additive Phase Jitter Typ RMS (fs) | 170 |
| Additive Phase Jitter Typ RMS (ps) | 0.17 |
| Core Voltage (V) | 2.5 |
| Divider Value | 1, 2, 4 |
| Function | Buffer, Divider |
| Input Freq (MHz) | 3000 |
| Input Type | CML, LVDS, LVPECL |
| Inputs (#) | 1 |
| Length (mm) | 5 |
| MOQ | 2500 |
| Output Banks (#) | 3 |
| Output Freq Range (MHz) | 3000 |
| Output Skew (ps) | 4 |
| Output Type | LVDS |
| Output Voltage (V) | 2.5 |
| Outputs (#) | 8 |
| Package Area (mm²) | 25 |
| Pitch (mm) | 0.5 |
| Pkg. Dimensions (mm) | 5.0 x 5.0 x 0.9 |
| Pkg. Type | VFQFPN |
| Product Category | Clock Buffers & Drivers, Clock Dividers |
| Reel Size (in) | 13 |
| Requires Terms and Conditions | Does not require acceptance of Terms and Conditions |
| Tape & Reel | Yes |
| Thickness (mm) | 0.9 |
| Width (mm) | 5 |
The 8S89200I is a high-speed 1-to-8 differential-to-LVDS clock divider that is optimized for high speed and very low output skew, making it suitable for use in demanding applications such as SONET, 1 Gigabit and 10 Gigabit Ethernet, and Fibre Channel. The internally terminated differential inputs and VREF_AC pins allow other differential signal families such as LVPECL, LVDS, and CML to be easily interfaced to the input with minimal use of external components.
The device also has a selectable ÷1, ÷2, ÷4 output divider, which can allow the part to support multiple output frequencies from the same reference clock. The 8S89200I is packaged in a small 5mm x 5mm 32-pin VFQFN package which makes it ideal for use in space-constrained applications.