Ultra Low Noise, Precision Voltage Reference ISL21090 Features The ISL21090 is a ultra low noise, high DC accuracy precision voltage reference with wide input voltage range. The ISL21090 uses the new Intersil Advanced Bipolar technology to achieve sub 1.0µVP-P (1.25V option) 0.1Hz to10Hz noise with an initial voltage accuracy of 0.02% (2.5V option). • Reference Output Voltage Option - 1.25V, 2.5V, and 5.0V (Released) - 7.5V (Coming Soon) • Initial Accuracy: - ISL21090-12 . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .±0.03% - ISL21090-25 . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .±0.02% - ISL21090-50 . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .±0.025% The ISL21090 offers 1.25V, 2.5V, and 5.0V output voltage options with 7ppm/°C temperature coefficient and also provides excellent line and load regulation. These devices are offered in an 8 Ld SOIC package. The ISL21090 is ideal for high-end instrumentation, data acquisition and processing applications requiring high DC precision where low noise performance is critical. • Supply Current . . . . . . . . . . . . . . . . . . . .750µA (1.25V Option) • Temperature Coefficient . . . . . . . . . . . . . . . . . . 7ppm/°C Max • Output Current Capability . . . . . . . . . . . . . . . . . . . . . . . . 20mA Applications • Line Regulation . . . . . . . . . . . . . . . . . 6ppm/V (1.25V Option) • High-End Instrumentation • Load Regulation . . . . . . . . . . . . . . 2.5ppm/mA (1.25V Option) • Precision Voltage Sources for Data Acquisition System, Industrial Control, Communication Infrastructure • Operating Temperature Range. . . . . . . . . . .-40°C to +125°C Related Literature • Process Control and Instrumentations • Active Source for Sensors 2 10µF 0.1µF 3 4 See AN1764, “ISL21090XXEV1Z User’s Guide” DNC DNC VIN DNC COMP GND VDD SERIAL CLOCK CHIP SELECT SERIAL DATA I/O VOUT TRIM 8 2.5010 7 VREF 6 2.5005 5 0.1µF VREF SCLK OUTxS CSb OUTxF SDIO DACOUTx TYPICAL TEMPERATURE COEFFICIENT CURVE FOR 10 UNITS 2.5000 VOUT (V) 1 VIN • Output Voltage Noise (0.1Hz to 10Hz) . . . . . . . . . . . . 1.0µVP-P Typ (1.25V Option) 2.4995 2.4990 2.4985 GND 2.4980 -55 DAC -35 -15 5 25 45 65 85 105 125 145 TEMPERATURE (°C) FIGURE 1. ISL21090 TYPICAL APPLICATION DIAGRAM November 21, 2012 FN6993.3 1 FIGURE 2. VOUT vs TEMPERATURE (2.5V OPTION) CAUTION: These devices are sensitive to electrostatic discharge; follow proper IC Handling Procedures. 1-888-INTERSIL or 1-888-468-3774 | Copyright Intersil Americas Inc. 2011, 2012. All Rights Reserved Intersil (and design) is a trademark owned by Intersil Corporation or one of its subsidiaries. All other trademarks mentioned are the property of their respective owners. ISL21090 Pin Configuration ISL21090 (8 LD SOIC) TOP VIEW 1 DNC DNC VIN DNC 8 7 2 3 4 COMP 6 VOUT GND 5 TRIM Pin Descriptions PIN NUMBER PIN NAME DESCRIPTION 1, 7, 8 DNC Do Not Connect 2 VIN Input Voltage Connection 3 COMP 4 GND Ground Connection 5 TRIM Voltage Reference Trim input 6 VOUT Voltage Reference Output Compensation and Noise Reduction Capacitor Ordering Information PART NUMBER (Notes 1, 2, 3) PART MARKING VOUT OPTION (V) GRADE (%) TEMPCO (ppm/°C) TEMP RANGE (°C) PACKAGE TAPE & REEL (Pb-Free) PKG. DWG. # ISL21090BFB812Z-TK 21090 BFZ12 1.25 0.03 7 -40 to +125 8 Ld SOIC M8.15E ISL21090BFB825Z-TK 21090 BFZ25 2.5 0.02 7 -40 to +125 8 Ld SOIC M8.15E ISL21090BFB850Z-TK 21090 BFZ50 5.0 0.02 7 -40 to +125 8 Ld SOIC M8.15E Coming Soon ISL21090BFB875Z-TK 21090 BFZ75 7.5 0.02 7 -40 to +125 8 Ld SOIC M8.15E NOTES: 1. Please refer to TB347 for details on reel specifications. 2. These Intersil Pb-free plastic packaged products employ special Pb-free material sets, molding compounds/die attach materials, and 100% matte tin plate plus anneal (e3 termination finish, which is RoHS compliant and compatible with both SnPb and Pb-free soldering operations). Intersil Pb-free products are MSL classified at Pb-free peak reflow temperatures that meet or exceed the Pb-free requirements of IPC/JEDEC J STD-020. 3. For Moisture Sensitivity Level (MSL), please see device information page for ISL21090B12, ISL21090B25, ISL21090B50. For more information on MSL please see Tech Brief TB363. 2 FN6993.3 November 21, 2012 ISL21090 Absolute Maximum Ratings Thermal Information Max Voltage VIN to GND . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . -0.5V to +40V VOUT to GND (10s). . . . . . . . . . . . . . . . . . . . . . . . . . . . .-0.5V to VOUT + 0.5V Voltage on any Pin to Ground . . . . . . . . . . . . . . . . . . . -0.5V to +VOUT + 0.5V Voltage on DNC pins . . . . . . . . . . . . . . . No connections permitted to these pins Input Voltage Slew Rate (Max) . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 0.1V/µs ESD Ratings Human Body Model (Tested per JESD22-A114F) . . . . . . . . . . . . . . . . 3kV Machine Model (Tested per JESD22-A115-C) . . . . . . . . . . . . . . . . . . 200V Charged Device Model (Tested per JESD22-C110D) . . . . . . . . . . . . . 2kV Latch-up (Tested per JESD-78B; Class 2, Level A) . . . . . . . . . . . . . . . at +125°C Thermal Resistance (Typical) θJA (°C/W) θJC (°C/W) 8 Ld SOIC Package (Notes 4, 5) . . . . . . . . . 110 60 Continuous Power Dissipation (TA = +125°C) . . . . . . . . . . . . . . . . .217mW Maximum Junction Temperature (TJMAX). . . . . . . . . . . . . . . . . . . . . .+150°C Storage Temperature Range. . . . . . . . . . . . . . . . . . . . . . . .-65°C to +150°C Recommended Operating Conditions Temperature Range (Industrial) . . . . . . . . . . . . . . . . . . . . .-40°C to +125°C CAUTION: Do not operate at or near the maximum ratings listed for extended periods of time. Exposure to such conditions may adversely impact product reliability and result in failures not covered by warranty. NOTES: 4. θJA is measured with the component mounted on a high effective thermal conductivity test board in free air. See Tech Brief TB379 for details. 5. For θJC, the “case temp” location is taken at the package top center. 6. Post-reflow drift for the ISL21090 devices can exceed 100µV to 1.0mV based on experimental results with devices on FR4 double sided boards. The system engineer must take this into account when considering the reference voltage after assembly. Electrical Specifications VIN = 5V (1.25V option), IOUT = 0, CL = 0.1µF and Cc = 0.01µF, unless otherwise specified. Boldface limits apply over the operating temperature range, -40°C to +125°C. PARAMETER DESCRIPTION CONDITIONS VOUT Output Voltage VIN = 5V, VOA VOUT Accuracy @ TA = +25°C (Note 6) VOUT = 1.25V Output Voltage Temperature Coefficient (Note 8) ISL21090 B grade VIN Input Voltage Range VOUT = 1.25V IIN Supply Current ΔVOUT /ΔVIN Line Regulation ΔVOUT/ΔIOUT Load Regulation MIN (Note 7) TYP MAX (Note 7) 1.25 V +0.03 % 7 ppm/°C 36 V 0.750 1.28 mA 6 17 ppm/V Sourcing: 0mA ≤ IOUT ≤ 20mA 2.5 17 ppm/mA Sinking: -10mA ≤ IOUT ≤ 0mA 2.5 17 ppm/mA Dropout Voltage (Note 9) VOUT = 1.25V @ 10mA 1.7 2.15 V ISC+ Short Circuit Current TA = +25°C, VOUT tied to GND 53 mA ISC- Short Circuit Current TA = +25°C, VOUT tied to VIN -23 mA tR Turn-on Settling Time 90% of final value, CL = 1.0µF, CC = open 150 µs Ripple Rejection f = 120Hz 90 dB Voltage Noise 0.1Hz ≤ f ≤ 10Hz, VOUT = 1.25V 1.0 µVP-P Vn Broadband Voltage Noise 10Hz ≤ f ≤ 1kHz, VOUT = 1.25V 1.2 µVRMS en Noise Voltage Density f = 1kHz, VOUT = 1.25V 35.4 nV/√Hz Long Term Stability TA = +25°C 20 ppm TC VOUT VD enp-p ΔVOUT/Δt 3 VIN = 3.7V to 36V, VOUT = 1.25V -0.03 UNIT 3.7 FN6993.3 November 21, 2012 ISL21090 Electrical Specifications temperature range, -40°C to +125°C. PARAMETER VIN = 5V (2.5V option), IOUT = 0 unless otherwise specified. Boldface limits apply over the operating DESCRIPTION CONDITIONS VOUT Output Voltage VIN = 5V VOA VOUT Accuracy @ TA = +25°C All VOUT options TC VOUT Output Voltage Temperature Coefficient ISL21090 B grade VIN Input Voltage Range VOUT = 2.5V MIN (Note 7) TYP MAX (Note 7) UNIT 2.5 -0.02 3.7 V +0.02 % 7 ppm/°C 36 V IIN Supply Current 0.930 1.28 mA ΔVOUT /ΔVIN Line Regulation VIN = 3.7V to 36V, VOUT = 2.5V 8 18 ppm/V ΔVOUT/ΔIOUT Load Regulation Sourcing: 0mA ≤ IOUT ≤ 20mA 2.5 17 ppm/mA Sinking: -10mA ≤ IOUT ≤ 0mA 2.5 17 ppm/mA VD Dropout Voltage (Note 9) VOUT = 2.5V @ 10mA 1.1 1.7 V ISC+ Short Circuit Current TA = +25°C, VOUT tied to GND 55 mA ISC- Short Circuit Current TA = +25°C, VOUT tied to VIN -61 mA tR Turn-on Settling Time 90% of final value, CL = 1.0µF, CC = open 150 µs Ripple Rejection f = 120Hz 90 dB Noise Voltage 0.1Hz ≤ f ≤ 10Hz, VOUT = 2.5V 1.9 µVP-P enp-p Vn Broadband Voltage Noise 10Hz ≤ f ≤ 1kHz, VOUT = 2.5V 1.6 µVRMS en Noise Voltage Density f = 1kHz, VOUT = 2.5V 50 nV/√Hz Electrical Specifications temperature range, -40°C to +125°C. PARAMETER VIN = 10.0V (5.0V option), IOUT = 0unless otherwise specified. Boldface limits apply over the operating DESCRIPTION CONDITIONS VOUT Output Voltage VIN = 10.0V, VOA VOUT Accuracy @ TA = +25°C (Note 6) VOUT = 5.0V Output Voltage Temperature Coefficient (Note 8) ISL21090 B grade VIN Input Voltage Range VOUT = 5.0V IIN Supply Current ΔVOUT /ΔVIN Line Regulation ΔVOUT/ΔIOUT Load Regulation MIN (Note 7) TYP MAX (Note 7) 5.0 V 0.025 % 7 ppm/°C 36 V 0.930 1.33 mA VIN = 7.0V to 36V, VOUT = 5.0V 8 18 ppm/V Sourcing: 0mA ≤ IOUT ≤ 20mA 2.5 17 ppm/mA Sinking: -10mA ≤ IOUT ≤ 0mA 2.5 17 ppm/mA Dropout Voltage (Note 9) VOUT = 5.0V @ 10mA 1.1 1.7 V ISC+ Short Circuit Current TA = +25°C, VOUT tied to GND 61 mA ISC- Short Circuit Current TA = +25°C, VOUT tied to VIN -75 mA tR Turn-on Settling Time 90% of final value, CL = 1.0µF, CC = open 150 µs Ripple Rejection f = 120Hz 90 dB TC VOUT VD 4 0.025 UNIT 7 FN6993.3 November 21, 2012 ISL21090 Electrical Specifications VIN = 10.0V (5.0V option), IOUT = 0unless otherwise specified. Boldface limits apply over the operating temperature range, -40°C to +125°C. (Continued) PARAMETER DESCRIPTION CONDITIONS MIN (Note 7) TYP MAX (Note 7) UNIT Output Voltage Noise 0.1Hz ≤ f ≤ 10Hz, VOUT = 5.0V 4.2 µVP-P Vn Broadband Voltage Noise 10Hz ≤ f ≤ 1kHz, VOUT = 5.0V 3.2 µVRMS en Noise Voltage Density f = 1kHz, VOUT = 5.0V 100 nV/√Hz enp-p NOTES: 7. Compliance to datasheet limits is assured by one or more methods: production test, characterization and/or design. 8. Over the specified temperature range. Temperature coefficient is measured by the box method whereby the change in VOUT is divided by the temperature range; in this case, -40°C to +125°C = +165°C. 9. Dropout Voltage is the minimum VIN - VOUT differential voltage measured at the point where VOUT drops 1mV from VIN = nominal at TA = +25°C. 5 FN6993.3 November 21, 2012 ISL21090 Typical Performance Curves (ISL21090-1.25V) 900 1200 850 1100 1000 UNIT 1 700 UNIT 3 650 +25°C 800 700 600 600 500 550 3.7 400 3.7 8.7 13.7 18.7 23.7 VIN (V) 28.7 33.7 -40°C 8.7 13.7 18.7 33.7 1.2503 1.2502 LINE REGULATION (V) 1.2502 UNIT 1 1.2501 1.2500 UNIT 3 1.2499 UNIT 2 1.2498 1.2497 1.2501 +25°C 1.2500 1.2499 1.2498 -40°C 1.2497 +125°C 1.2496 1.2495 1.2496 3.7 8.7 13.7 18.7 23.7 28.7 33.7 38.7 1.2494 3.7 8.7 13.7 18.7 23.7 28.7 33.7 VIN (V) VIN (V) FIGURE 5. LINE REGULATION, THREE UNITS FIGURE 6. LINE REGULATION, THREE TEMPERATURES 3 2.0 2 1.5 1 AMPLITUDE (mV) AMPLITUDE (mV) 28.7 FIGURE 4. IIN vs VIN, THREE TEMPERATURES 1.2503 0 -1 -2 -3 -4 23.7 VIN (V) FIGURE 3. IIN vs VIN, THREE UNITS LINE REGULATION (V) +125°C 900 UNIT 2 750 IDD (µA) IDD (µA) 800 1.0 0.5 0 -0.5 -1.0 -1.5 -2.0 0 10 20 30 40 50 60 70 80 90 100 TIME (µs) FIGURE 7. LINE TRANSIENT WITH 10nF LOAD (ΔVIN = ±500mV) 6 0 10 20 30 40 50 60 70 80 90 100 TIME (µs) FIGURE 8. LINE TRANSIENT WITH 100nF LOAD (ΔVIN = ±500mV) FN6993.3 November 21, 2012 ISL21090 Typical Performance Curves (ISL21090-1.25V) (Continued) 50 30 40 20 VOUT (µV) 20 AMPLITUDE (mV) 30 +25°C +125°C 10 0 -10 10 -30 -25 -10 -20 -20 -15 -10 -5 0 SOURCING ILOAD (mA) 5 10 SINKING -30 15 200 6 6 5 5 2 800 1000 1200 3 2 1 1 VOUT = 0.1µF 0 0 50 VOUT 1µF 0 -1 100 150 200 250 300 350 400 450 500 550 0 50 100 150 200 250 300 350 400 450 500 550 TIME (µs) TIME (µs) FIGURE 11. TURN ON TIME WITH 0.1µF 100 FIGURE 12. TURN ON TIME WITH 1µF 0 CL = 1nF 100nF CL = 10nF 10 -20 1 -40 PSRR (dB) ZOUT (Ω) 600 VIN 4 VIN 3 0.1 CL = 10µF 0.01 CL = 1µF 0.001 0.0001 400 FIGURE 10. LOAD TRANSIENT (ΔILOAD = ±1mA) VOUT (V) VOUT (V) 0 TIME (µs) FIGURE 9. LOAD REGULATION, THREE TEMPERATURE 4 1µF 0 -40°C -20 -1 100nF 100 -80 -100 CL = 100nF 10 1µF -60 1k 10k 100k 1M 10M FREQUENCY (Hz) FIGURE 13. ZOUT vs FREQUENCY (COMP = 0.01µF) 7 -120 10 100 1k 10k 100k FREQUENCY (Hz) 1M 10M FIGURE 14. PSRR AT DIFFERENT CAPACITIVE LOADS FN6993.3 November 21, 2012 ISL21090 Typical Performance Curves (ISL21090-1.25V) (Continued) -30 100 CURRENT (mA) -45 +25°C -50 -55 -40°C 70 +25°C 60 50 +125°C 40 30 20 -60 10 8.7 13.7 18.7 23.7 28.7 0 33.7 3.7 8.7 13.7 VIN (V) FIGURE 15. SHORT CIRCUIT TO GND 18.7 VIN (V) 23.7 28.7 33.7 FIGURE 16. SHORT CIRCUIT TO VIN X = 1s/DIV Y = 0.5µV/DIV 1.2502 +25°C 1.2500 1.2498 VOUT (V) CURRENT (mA) 80 +125°C -40 -65 3.7 -40°C 90 -35 -40°C 1.2496 1.2494 1.2492 1.2490 3.7 +85°C 8.7 13.7 18.7 23.7 28.7 33.7 VIN (V) FIGURE 17. VOUT vs NOISE, 0.1Hz TO 10Hz 8 FIGURE 18. DROPOUT WITH -10mA LOAD FN6993.3 November 21, 2012 ISL21090 Typical Performance Curves (ISL21090-2.5) 1300 1000 1200 980 UNIT 3 1100 IIN (µA) IIN (µA) 960 940 UNIT 1 920 900 800 900 UNIT 2 700 19 600 4 880 4 9 14 24 VIN (V) 29 34 39 FIGURE 19. IIN vs VIN, THREE UNITS 2.500290 9 14 19 34 39 2.499800 VOUT (V) 2.499990 UNIT 2 UNIT 3 2.499890 2.499600 +125°C 2.499400 -40°C 2.499200 2.499000 2.499790 6 9 12 15 18 21 24 27 30 33 36 39 2.498800 4 9 14 19 VIN (V) FIGURE 21. LINE REGULATION, THREE UNITS 30 30 20 20 10 CL = 1nF 0 24 VIN (V) 29 34 39 FIGURE 22. LINE REGULATION, THREE TEMPERATURES AMPLITUDE (mV) AMPLITUDE (mV) 29 +25°C 2.500000 2.500090 -10 10 CL = 100nF 0 -10 -20 -20 -30 24 VIN (V) 2.500200 UNIT 1 2.500190 2.499690 3 -40°C FIGURE 20. IIN vs VIN, THREE TEMPERATURES 2.500390 VOUT (V) +125°C +25°C 1000 0 10 20 30 40 50 60 TIME (µs) 70 80 90 100 FIGURE 23. LINE TRANSIENT WITH 1nF LOAD (ΔVIN = ±500mV) 9 -30 0 10 20 30 40 50 60 70 80 90 100 TIME (µs) FIGURE 24. LINE TRANSIENT WITH 100nF LOAD (ΔVIN = ±500mV) FN6993.3 November 21, 2012 ISL21090 Typical Performance Curves (ISL21090-2.5) (Continued) 6 30 20 4 AMPLITUDE (mV) +25°C VOUT (µV) 10 0 -40°C -10 -20 +125°C 0 -2 CL = 100nF -20 -15 -10 -5 0 5 10 ILOAD (mA) (SOURCING) 15 -6 20 0 5 5 3 2 CL = 0.1µF 1 2 CL = 1µF 1 0 -1 0 300 350 400 50 100 150 TIME (µs) 250 300 350 400 FIGURE 28. TURN-ON TIME WITH 1µF 0 1000 100 -20 CL = NO LOAD 10 CL = 100nF -40 CL = 10nF CL = 100nF PSRR (dB) ZOUT (Ω) 200 TIME (µs) FIGURE 27. TURN-ON TIME WITH 0.1µF 1 CL = 1nF CL = 10nF -60 CL = 1nF -80 -100 0.1 0.01 10 120 3 -1 250 100 VIN 0 200 80 4 VIN VOUT (V) VOUT (V) 4 150 60 FIGURE 26. LOAD TRANSIENT (ΔILOAD = ±1mA) 6 100 40 TIME (µs) 6 50 20 (SINKING) FIGURE 25. LOAD REGULATION, THREE TEMPERATURES 0 CL = 1µF -4 -30 -40 -25 CL = NO LOAD 2 -120 100 1k 10k 100k FREQUENCY (Hz) FIGURE 29. ZOUT vs FREQUENCY 10 1M 10M -140 10 CL = NO LOAD 100 1k 10k 100k 1M 10M FREQUENCY (Hz) FIGURE 30. PSRR AT DIFFERENT CAPACITIVE LOADS FN6993.3 November 21, 2012 ISL21090 -30 90 -35 80 -40°C -40 CURRENT (mA) CURRENT (mA) Typical Performance Curves (ISL21090-2.5) (Continued) +125°C -45 +25°C -50 -55 -40°C -60 -65 3 8 13 70 60 +25°C 50 40 18 23 VIN (V) 28 33 30 38 +125°C 3 8 13 18 23 28 33 38 VIN (V) FIGURE 32. SHORT-CIRCUIT TO VIN FIGURE 31. SHORT-CIRCUIT TO GND X = 10s/DIV Y = 1µV/DIV 2.5010 TYPICAL TEMPERATURE 2.5005 COEFFICIENT CURVE FOR 10 UNITS VOUT (V) 2.5000 2.4995 2.4990 2.4985 2.4980 -55 -35 -15 5 25 45 65 85 105 125 145 TEMPERATURE (°C) FIGURE 33. VOUT vs TEMPERATURE, 10 UNITS 2.5000 FIGURE 34. VOUT vs NOISE, 0.1Hz TO 10Hz 50 +25°C 40 2.4998 30 20 +85°C PPM VOUT (V) 2.4996 2.4994 10 0 2.4992 -10 2.4990 -20 -40°C 2.4988 0 5 10 15 20 VIN (V) 25 30 FIGURE 35. DROPOUT WITH -10mA LOAD 11 35 40 -30 0 500 1000 1500 2000 TIME (Hrs) 2500 3000 FIGURE 36. LONG TERM STABILITY FN6993.3 November 21, 2012 ISL21090 Typical Performance Curves (ISL21090-5.0) 1150 1300 1100 1200 UNIT 1 1100 IIN (µA) IIN (µA) 1050 UNIT 2 1000 950 +125°C 900 800 900 12 17 22 -40°C 700 UNIT 3 850 7 27 32 600 7 37 12 17 22 VIN (V) VIN (V) FIGURE 37. IIN vs VIN, THREE UNITS 37 +25°C 5.00050 5.00050 5.00040 5.00000 UNIT 2 5.00030 VOUT (V) VOUT (V) 32 5.00100 UNIT 1 5.00060 5.00020 5.00010 5.00000 4.99950 4.99900 -40°C 4.99850 4.99800 4.99990 4.99980 12 17 22 VIN (V) 27 32 37 4.99700 7 12 17 22 27 32 37 VIN (V) FIGURE 39. LINE REGULATION, THREE UNITS FIGURE 40. LINE REGULATION, THREE TEMPERATURES 30 20 20 AMPLITUDE (mV) 30 10 CL = 1nF 0 +125°C 4.99750 UNIT 3 4.99970 7 AMPLITUDE (mV) 27 FIGURE 38. IIN vs VIN, THREE TEMPERATURES 5.00070 -10 10 CL = 100nF 0 -10 -20 -20 -30 +25°C 1000 0 10 20 30 40 50 60 70 80 90 100 TIME (µs) FIGURE 41. LINE TRANSIENT WITH 1nF LOAD (ΔVIN = ±500mV) 12 -30 0 10 20 30 40 50 60 TIME (µs) 70 80 90 100 FIGURE 42. LINE TRANSIENT WITH 100nF LOAD (ΔVIN = ±500mV) FN6993.3 November 21, 2012 ISL21090 Typical Performance Curves (ISL21090-5.0) (Continued) 10 400 8 200 +25°C 6 AMPLITUDE (mV) 0 VOUT (µV) -200 -400 -600 -40°C +125°C -800 CL = 100nF 4 CL = 1µF 2 0 -2 -4 -6 -1000 -8 -1200 -20 -15 SOURCING -10 -5 ILOAD (mA) 0 -10 5 10 SINKING 0 FIGURE 43. LOAD REGULATION, THREE TEMPERATURES 12 10 10 VIN VOUT (V) VOUT (V) CL = 0.1µF 2 80 100 120 TIME (µs) 160 180 200 6 4 CL = 1µF 0 0 50 100 150 200 250 300 350 -2 400 0 50 100 150 FIGURE 45. TURN-ON TIME WITH 0.1µF 300 350 400 0 CL = 0 CL = 1nF -20 100 CL = 0 CL = 1nF PSRR (dB) CL = 10nF 10 CL = 100nF 0.1 0.01 10 250 FIGURE 46. TURN-ON TIME WITH 1µF 1000 1 200 TIME (µs) TIME (µs) ZOUT (Ω) 140 VIN 2 0 -2 60 8 6 4 40 FIGURE 44. LOAD TRANSIENT (ΔILOAD = ±1mA) 12 8 20 -40 CL = 100nF -60 CL = 10nF -80 -100 100 1k 10k 100k FREQUENCY (Hz) FIGURE 47. ZOUT vs FREQUENCY 13 1M 10M -120 10 100 1k 10k 100k 1M 10M FREQUENCY (Hz) FIGURE 48. PSRR AT DIFFERENT CAPACITIVE LOADS FN6993.3 November 21, 2012 ISL21090 Typical Performance Curves (ISL21090-5.0) (Continued) -20 100 -40°C 90 -30 80 ISC (mA) ISC (mA) -40 +125°C -50 +25°C -60 70 +25°C 60 +125°C 50 40 -70 -80 -40°C 7 12 30 17 22 VIN (V) 27 32 20 37 5 17 22 VIN (V) 27 32 37 5.10 4 5.05 3 2 5.00 1 VOUT(V) INPUT NOISE VOLTAGE (µV) 12 FIGURE 50. SHORT-CIRCUIT TO VIN FIGURE 49. SHORT-CIRCUIT TO GND 0 -1 4.95 4.90 -2 -3 -40°C +25°C +125°C 4.85 -4 -5 7 0 1 2 3 4 5 6 7 8 TIME (s) FIGURE 51. VOUT vs NOISE, 0.1Hz TO 10Hz 14 9 10 4.80 6.00 6.10 6.20 6.30 6.40 6.50 6.60 6.70 6.80 6.90 7.00 VIN (V) FIGURE 52. DROPOUT WITH -10mA LOAD FN6993.3 November 21, 2012 ISL21090 Device Operation Turn-On Time Precision Bandgap Reference Normal turn-on time is typically 150µs, as shown in Figure 28. The circuit designer must take this into account when looking at power-up delays or sequencing. The ISL21090 uses a bandgap architecture and special trimming circuitry to produce a temperature compensated, precision voltage reference with high input voltage capability and moderate output current drive. Low noise performance is achieved using optimized biasing techniques. Key features for precision low noise portable applications, such as handheld meters and instruments are supply current (900µA) and noise (0.1Hz to 10Hz bandwidth) 1.0µVP-P to 4.6µVP-P. Data Converters in particular can utilize the ISL21090 as an external voltage reference. Low power DAC and ADC circuits will realize maximum resolution with lowest noise. The device maintains output voltage during conversion cycles with fast response, although it is helpful to add an output capacitor, typically 1μF. In case of the 1.25V option, a 0.01µF capacitor must be added to the COMP (pin 3) for stabilization purposes. and a minimum of 0.1µF capacitor must be added at the output. Applications Information Board Mounting Considerations For applications requiring the highest accuracy, the board mounting location should be reviewed. The device uses a plastic SOIC package, which subjects the die to mild stresses when the printed circuit (PC) board is heated and cooled, which slightly changes the shape. Because of these die stresses, placing the device in areas subject to slight twisting can cause degradation of reference voltage accuracy. It is normally best to place the device near the edge of a board, or on the shortest side, because the axis of bending is most limited in that location. Mounting the device in a cutout also minimizes flex. Obviously, mounting the device on flexprint or extremely thin PC material will likewise cause loss of reference accuracy. Board Assembly Considerations Some PC board assembly precautions are necessary. Normal output voltage shifts of 100µV to 500µV can be expected with Pb-free reflow profiles or wave solder on multi-layer FR4 PC boards. Precautions should be taken to avoid excessive heat or extended exposure to high reflow or wave solder temperatures. Temperature Coefficient The limits stated for temperature coefficient (Tempco) are governed by the method of measurement. The overwhelming standard for specifying the temperature drift of a reference is to measure the reference voltage at two temperatures, take the total variation, (VHIGH – VLOW), and divide by the temperature extremes of measurement (THIGH – TLOW). The result is divided by the nominal reference voltage (at T = +25°C) and multiplied by 106 to yield ppm/°C. This is the “Box” method for specifying temperature coefficient. Output Voltage Adjustment The output voltage can be adjusted above and below the factory-calibrated value via the trim terminal. The trim terminal is the negative feedback divider point of the output op amp. The positive input of the amplifier is about 1.216V, and in feedback, so will be the trim voltage. The trim terminal has a 5000Ω resistor to ground internally, and in the case of the 2.5V output version, there is a feedback resistor of approximately 5000Ω from VOUT to trim. The suggested method to adjust the output is to connect a very high value external resistor directly to the trim terminal and connect the other end to the wiper of a potentiometer that has a much lower total resistance and whose outer terminals connect to VOUT and ground. If a 1MΩ resistor is connected to trim, the output adjust range will be ±6.3mV. It is important to minimize the capacitance on the trim terminal to preserve output amplifier stability. It is also best to connect the series resistor directly to the trim terminal, to minimize that capacitance and also to minimize noise injection. Small trim adjustments will not disturb the factory-set temperature coefficient of the reference, but trimming near the extreme values can. Noise Performance and Reduction The output noise voltage in a 0.1Hz to 10Hz bandwidth is typically 1.9µVP-P (VOUT = 2.5V). The noise measurement is made with a bandpass filter. The filter is made of a 1-pole high-pass filter, with a corner frequency at 0.1Hz, and a 2-pole low-pass filter, with a corner frequency (3dB) at 9.9Hz, to create a filter with a 9.9Hz bandwidth. Noise in the 10Hz to 1kHz bandwidth is approximately 1.6µVRMS (VOUT = 2.5V), with 0.1µF capacitance on the output. This noise measurement is made with a 2 decade bandpass filter. The filter is made of a 1-pole high-pass filter with a corner frequency at 10Hz of the center frequency, and 1-pole low-pass filter with a corner frequency at 1kHz. Load capacitance up to 10µF can be added but will result in only marginal improvements in output noise and transient response. 15 FN6993.3 November 21, 2012 ISL21090 Revision History The revision history provided is for informational purposes only and is believed to be accurate, but not warranted. Please go to web to make sure you have the latest revision. DATE REVISION CHANGE August 22, 2012 FN6993.3 Added 5.0V option “Typical Performance Curves” table to page 12. Removed 7.5V and 10V option Electrical Specs May 1, 2012 FN6993.2 Added 5.0V option “Electrical Specifications” table to page 4. Added 7.5V option “Electrical Specifications” table to page 5. Added 10.0V option “Electrical Specifications” table to page 5. March 5, 2012 FN6993.1 Added 1.25V option “Electrical Specifications” table to page 3. Added 1.25V Typical Performance Curves section on page 6. Changed MIN limit for VIN 2.5V option on page 4. June 8, 2011 FN6993.0 Initial Release About Intersil Intersil Corporation is a leader in the design and manufacture of high-performance analog, mixed-signal and power management semiconductors. The company's products address some of the fastest growing markets within the industrial and infrastructure, personal computing and high-end consumer markets. For more information about Intersil or to find out how to become a member of our winning team, visit our website and career page at www.intersil.com. For a complete listing of Applications, Related Documentation and Related Parts, please see the respective product information page. Also, please check the product information page to ensure that you have the most updated datasheet: ISL21090B12, ISL21090B25, ISL21090B50 To report errors or suggestions for this datasheet, please go to: www.intersil.com/askourstaff Reliability reports are available from our website at: http://rel.intersil.com/reports/search.php For additional products, see www.intersil.com/product_tree Intersil products are manufactured, assembled and tested utilizing ISO9000 quality systems as noted in the quality certifications found at www.intersil.com/design/quality Intersil products are sold by description only. Intersil Corporation reserves the right to make changes in circuit design, software and/or specifications at any time without notice. Accordingly, the reader is cautioned to verify that data sheets are current before placing orders. Information furnished by Intersil is believed to be accurate and reliable. However, no responsibility is assumed by Intersil or its subsidiaries for its use; nor for any infringements of patents or other rights of third parties which may result from its use. No license is granted by implication or otherwise under any patent or patent rights of Intersil or its subsidiaries. For information regarding Intersil Corporation and its products, see www.intersil.com 16 FN6993.3 November 21, 2012 ISL21090 Package Outline Drawing M8.15E 8 LEAD NARROW BODY SMALL OUTLINE PLASTIC PACKAGE Rev 0, 08/09 4 4.90 ± 0.10 A DETAIL "A" 0.22 ± 0.03 B 6.0 ± 0.20 3.90 ± 0.10 4 PIN NO.1 ID MARK 5 (0.35) x 45° 4° ± 4° 0.43 ± 0.076 1.27 0.25 M C A B SIDE VIEW “B” TOP VIEW 1.75 MAX 1.45 ± 0.1 0.25 GAUGE PLANE C SEATING PLANE 0.10 C 0.175 ± 0.075 SIDE VIEW “A 0.63 ±0.23 DETAIL "A" (0.60) (1.27) NOTES: (1.50) (5.40) 1. Dimensions are in millimeters. Dimensions in ( ) for Reference Only. 2. Dimensioning and tolerancing conform to AMSE Y14.5m-1994. 3. Unless otherwise specified, tolerance : Decimal ± 0.05 4. Dimension does not include interlead flash or protrusions. Interlead flash or protrusions shall not exceed 0.25mm per side. 5. The pin #1 identifier may be either a mold or mark feature. 6. Reference to JEDEC MS-012. TYPICAL RECOMMENDED LAND PATTERN 17 FN6993.3 November 21, 2012