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LTC2413 Datasheet(PDF) 28 Page - Linear Technology |
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LTC2413 Datasheet(HTML) 28 Page - Linear Technology |
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28 / 44 page ![]() LTC2413 28 sn2413 2413fs APPLICATIO S I FOR ATIO Figure 27 shows the typical INL error due to the source resistance driving the REF+ or REF– pins when large CREF values are used. The effect of the source resistance on the two reference pins is additive with respect to this INL error. In general, matching of source impedance for the REF+ and REF– pins does not help the gain or the INL error. The user is thus advised to minimize the combined source impedance driving the REF+ and REF– pins rather than to try to match it. The magnitude of the dynamic reference current depends upon the size of the very stable internal sampling capaci- tors and upon the accuracy of the converter sampling clock. The accuracy of the internal clock over the entire temperature and power supply range is typical better than 0.5%. Such a specification can also be easily achieved by an external clock. When relatively stable resistors (50ppm/ °C) are used for the external source impedance seen by REF+ and REF–, the expected drift of the dynamic current gain error will be insignificant (about 1% of its value over the entire temperature and voltage range). Even for the most stringent applications, a one-time calibration operation may be sufficient. In addition to the reference sampling charge, the reference pins ESD protection diodes have a temperature dependent leakage current. This leakage current, nominally 1nA ( ±10nA max), results in a small gain error. A 100Ω source resistance will create a 0.05 µV typical and 0.5µV maxi- mum full-scale error. Figure 23. +FS Error vs RSOURCE at REF+ or REF– (Small CREF) Figure 24. –FS Error vs RSOURCE at REF+ or REF– (Small CREF) Figure 25. +FS Error vs RSOURCE at REF+ or REF– (Large CREF) Figure 26. –FS Error vs RSOURCE at REF+ or REF– (Large CREF) RSOURCE (Ω) 1.E+00 1.E+01 1.E+02 1.E+03 1.E+04 1.E+05 2413 F23 0 –10 –20 –30 –40 –50 VCC = 5V REF+ = 5V REF – = GND IN+ = 5V IN – = 2.5V FO = GND TA = 25°C CREF = 0.01µF CREF = 0.001µF CREF = 100pF CREF = 0pF RSOURCE (Ω) 1.E+00 1.E+01 1.E+02 1.E+03 1.E+04 1.E+05 2413 F24 50 40 30 20 10 0 VCC = 5V REF+ = 5V REF – = GND IN+ = GND IN – = 2.5V FO = GND TA = 25°C CREF = 0.01µF CREF = 0.001µF CREF = 100pF CREF = 0pF RSOURCE (Ω) 0 100 200 300 400 500 600 700 800 900 1000 2413 F25 0 –90 –180 –270 –360 –450 VCC = 5V REF+ = 5V REF– = GND IN+ = 3.75V IN – = 1.25V FO = GND TA = 25°C CREF = 0.01µF CREF = 0.1µF CREF = 1µF, 10µF RSOURCE (Ω) 0 100 200 300 400 500 600 700 800 900 1000 2413 F26 450 360 270 180 90 0 VCC = 5V REF+ = 5V REF– = GND IN+ = 1.25V IN – = 3.75V FO = GND TA = 25°C CREF = 0.01µF CREF = 0.1µF CREF = 1µF, 10µF |
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