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AD768ACHIPS 데이터시트(PDF) 8 Page - Analog Devices |
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AD768ACHIPS 데이터시트(HTML) 8 Page - Analog Devices |
8 / 20 page REV. B –8– AD768 DIGITAL INPUT CODE – k 8 –8 065 10 20 30 40 4 –2 –4 –6 6 0 2 50 60 5 152535 4555 Figure 9. Typical DNL Performance The outputs have a compliance range of –1.2 V to +5.0 V with respect to LADCOM. The current steering output stages will remain functional over this range. Operation beyond the maxi- mum compliance limits may cause either output stage saturation or breakdown, resulting in nonlinear performance. The rated dc and ac performance specifications are for an output voltage of 0 V to –1 V. The current in LADCOM is proportional to IREFIN and has been carefully configured to be independent of digital code when the output is connected to a virtual ground. This minimizes any det- rimental effects of ladder ground resistance on linearity. For optimal dc linearity, IOUTA should be connected directly to a virtual ground, and IOUTB should be grounded. An example of this configuration is provided in the section “Buffered Voltage Output.” If IOUTA is driving a resistive load directly, then IOUTB should be terminated with an equal impedance. This will ensure the current in LADCOM remains constant with digi- tal code, and is recommended for improved dc linearity in the unbuffered voltage output configuration. As shown in Figure 10, there is an equivalent output impedance of 1 k Ω in parallel with 3 pF at each output terminal. If the out- put voltage deviates from the ladder common voltage, an error current flows through this 1 k Ω impedance. This is a linear effect which does not change with input code, so it appears as a gain error. With 50 Ω output termination, the resulting gain error is approximately –5%. An example of this configuration is pro- vided in the section Unbuffered Voltage Output. 1 26 27 28 1k Ω 1k Ω 3pF 3pF IOUT IOUT IREFIN x2.75 VEE LADCOM IOUTB IOUTA Figure 10. Equivalent Analog Output Circuit DIGITAL INPUTS The AD768 digital inputs consist of 16 data input pins and a clock pin. The 16-bit parallel data inputs follow standard posi- tive binary coding, where DB15 is the most significant bit (MSB) and DB0 is the least significant bit (LSB). IOUTA pro- duces full-scale output current when all data bits are at logic 1. IOUTB is the complementary output, with full-scale when all data bits are at logic 0. The full-scale current is split between the two outputs as a function of the input code. The digital interface is implemented using an edge-triggered master slave latch. The DAC output is updated following the rising edge of the clock, and is designed to support a clock rate as high as 40 MSPS. The clock can be operated at any duty cycle that meets the specified minimum latch pulse width. The setup and hold times can also be varied within the clock cycle as long as the specified minimums are met, although the location of these transition edges may affect digital feedthrough. The digital inputs are CMOS compatible with logic thresholds set to approximately half the positive supply voltage. The small input current requirements allow for easy interfacing to unbuffered CMOS logic. Figure 11 shows the equivalent digital input circuit. VCC VEE DIGITAL INPUT VCC DCOM Figure 11. Equivalent Digital Input Circuit Digital input signals to the DAC should be isolated from the analog output as much as possible. Interconnect distances to the DAC inputs should be kept as short as possible. Termination resistors may improve performance if the digital lines become too long. To minimize digital feedthrough, the inputs should be free from glitches and ringing, and may be further improved with a reduction of edge speed. |
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