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ZL40272 Datasheet(PDF) 13 Page - Microchip Technology |
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ZL40272 Datasheet(HTML) 13 Page - Microchip Technology |
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13 / 54 page ![]() 2020 - 2021 Microchip Technology Inc. and its subsidiaries DS20006408B-page 13 ZL40272 FIGURE 2-7: Input Driven by AC-Coupled LVDS for vcm_sel = 0 and 1. FIGURE 2-8: Input Driven by an SSTL Output for vcm_sel = 1. 2.2 Clock Outputs Differential outputs LVPECL, LVDS, and HCSL should have same termination as corresponding outputs described in previous section. The device is designed to drive differential input of semiconductor devices. In applications that use a transformer to con- vert from the differential to the single-ended output (for example, driving an oscilloscope 50Ω input), a resistor larger than 10Ω should be added at the center tap of the primary winding to achieve optimum jitter performance as shown in Figure 2-9. This is to provide a nominal common mode impedance of 10Ω or higher, which is typical for differential ter- minations. FIGURE 2-9: Driving a Load via Transformer. 2.3 Crystal Oscillator Input The crystal oscillator circuit can work with crystal resonators from 8 MHz to 160 MHz. To be able support crystal reso- nators with different characteristics, all internal components are programmable. The load capacitors can be programmed from 0 pF to 21.75 pF (4 pF default) with resolution of 0.25 pF, which not only meets load requirement for most crystal resonator but also allows for fine tuning of the crystal resonator frequency. The amplifier gain can be adjusted in five steps and series resistor can be adjusted as parallel combination of seven different resistors: 0Ω, 10.5Ω, 21Ω, 42Ω, 84Ω, 161Ω, and 312Ω. (84Ω default) Although the first resistor is 0Ω, the series resis- tance RS will be slightly higher than 0Ω due to parasitic resistance of the switch that connects to the resistor. Hence, the minimum series resistance is achieved when all seven resistors are connected in parallel. The shunt resistor is fixed and its value is 500 kΩ. MSCC Device 100 Z0 = 50 Z0 = 50 LVDS 10 nF 10 nF VDD VDD VDD VDD RUP RDWN vcm_sel 0 1 1 k 1 k 590 3.3 k RUP RUP RDWN RDWN 120 120 120 120 Z0 = 60 Z0 = 60 SSTL MSCC Device VDD VDD VDD VDD Z0 = 50 Z0 = 50 LVPECL 200 10 nF 10 nF 200 VDD 24.9 50 Add resisto r to the grou nd or leave open 2 : 1 Z0 = 50 |
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