ha1630q04 Renesas Electronics Corporation., ha1630q04 Datasheet

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ha1630q04

Manufacturer Part Number
ha1630q04
Description
Low Voltage Operation Cmos Quad Operational Amplifier
Manufacturer
Renesas Electronics Corporation.
Datasheet
HA1630Q04/05/06 Series
Low Voltage Operation CMOS Quad Operational Amplifier
Description
The HA1630Q04/05/06 are high slew rate single CMOS Operational Amplifiers realizing low voltage operation, low
input offset voltage and low supply current. In addition to a low operating voltage from 1.8V, these device output can
achieve full swing output voltage capability extending to either supply. Available in an ultra-small TSSOP-14 package
that occupies only 1/4 the area of the SOP-14 package.
Features
Ordering Information
HA1630Q04T
HA1630Q05T
HA1630Q06T
Rev.1.00 Mar 10, 2006 page 1 of 23
Low power and single supply operation
Low input offset voltage
Low supply current (per channel)
High slew rate
Maximum output voltage
Low input bias current
Type No.
TTP-14D
TTP-14D
TTP-14D
V
V
I
I
I
SR = 2 V/ s Typ (HA1630Q04)
SR = 4 V/ s Typ (HA1630Q05)
SR = 8 V/ s Typ (HA1630Q06)
V
I
DD
DD
DD
IB
DD
IO
OH
Package Name
= 1 pA Typ
= 200 A Typ (HA1630Q04)
= 400 A Typ (HA1630Q05)
= 800 A Typ (HA1630Q06)
= 4.0 mV Max
= 1.8 to 5.5 V
= 2.9 V Min (at V
DD
= 3.0 V)
PTSP0014JA-B
PTSP0014JA-B
PTSP0014JA-B
Package Code
REJ03D0803-0100
Mar 10, 2006
Rev.1.00

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ha1630q04 Summary of contents

Page 1

... Low Voltage Operation CMOS Quad Operational Amplifier Description The HA1630Q04/05/06 are high slew rate single CMOS Operational Amplifiers realizing low voltage operation, low input offset voltage and low supply current. In addition to a low operating voltage from 1.8V, these device output can achieve full swing output voltage capability extending to either supply. Available in an ultra-small TSSOP-14 package that occupies only 1/4 the area of the SOP-14 package ...

Page 2

... HA1630Q04/05/06 Series Pin Arrangement Equivalent Circuit (per one channel IN(–) V IN(+) V SS Rev.1.00 Mar 10, 2006 page OUT1 OUT4 IN1(–) − + − IN4(– IN1(+) IN4(+) IN2(+) IN3(+) − ...

Page 3

... V = 0.5 V (HA1630Q05) OL — 0.5 V (HA1630Q06) OL — V (HA1630Q04, HA1630Q05) — (HA1630Q06) — (HA1630Q04) L — (HA1630Q05) L — (HA1630Q06) L — dB — kHz (HA1630Q04) L — (HA1630Q05) L — (HA1630Q06) L — dB — (HA1630Q04 (HA1630Q05 (HA1630Q06) L (Ta = 25°C) ...

Page 4

... HA1630Q04/05/06 Series Table of Graphs Electrical Characteristics Supply current I DD Output high voltage V OH Output source current I O SOURCE Output low voltage V OL Output sink current I O SINK Input offset voltage V IO Common mode input V CM voltage range Power supply rejection PSRR ...

Page 5

... 25° 200 300 (µA) OSOURCE = 5 100 Figure 1-2. HA1630Q04 Supply Current vs. Ambient Temperature − Ambient Temperature Ta (°C) Figure 1-4. HA1630Q04 Output High Voltage vs. Supply Voltage Ta = 25° 3 Ω ...

Page 6

... Figure 1-7. HA1630Q04 − Ambient Temperature Ta (°C) Figure 1-9. HA1630Q04 Input Offset Voltage vs. Supply Voltage Ta = 25° Supply Voltage V (V) DD Figure 1-11. HA1630Q04 Common Mode Input Voltage vs. Ambient Temperature − ...

Page 7

... Rev.1.00 Mar 10, 2006 page Figure 1-12. HA1630Q04 Power Supply Rejection Ratio vs. Frequency 1k 10k Frequency f (Hz) Figure 1-13. HA1630Q04 Common Mode Rejection Ratio vs. Frequency 1k 10k Frequency f (Hz) Figure 1-14. HA1630Q04 Open Loop Voltage Gain Phase Angle Phase Margin: 57 deg 1k 10k Frequency f (Hz 25° 3 MΩ ...

Page 8

... 1.4 V 1.6 V 1.4 V Figure 1-16. HA1630Q04 Input Bias Current vs. Input Voltage Ta = 25° 0.5 1.0 1.5 2.0 Input Voltage V (V) IN Figure 1-18. HA1630Q04 Slew Rate (falling) vs. Ambient Temperature − Ambient Temperature Ta (°C) Figure 1-20. HA1630Q04 Small Signal Transient Response Ta = 25°C ...

Page 9

... Figure 1-23. HA1630Q04 Voltage Output p-p vs. Frequency Gain = 20 dB 0.3 Vp-p IN 10k 100k Frequency f (Hz 3 25°C Gain = kΩ S 10k Figure 1-22. HA1630Q04 Total Harmonic Distortion + Noise vs. Output Voltage p kHz kHz f = 100 Hz = 3.0 V 0.5 1.0 1.5 2.0 2.5 Output Voltage Vout p-p ( 25° 3 Gain = 0 dB ...

Page 10

... HA1630Q04/05/06 Series Main Characteristics (HA1630Q05) Figure 2-1. HA1630Q05 Supply Current vs. Supply Voltage 800 600 400 200 Supply Voltage V Figure 2-3. HA1630Q05 Output High Voltage vs. Output Source Current 100 200 Output Source Current I Figure 2-5. HA1630Q05 Output Source Current vs ...

Page 11

... HA1630Q04/05/06 Series Figure 2-6. HA1630Q05 Output Low Voltage vs. Output Sink Current Output Sink Current I Figure 2-8. HA1630Q05 Input Offset Voltage Distribution 25° 3 −4 −3 −2 −1 0 Input Offset Voltage V Figure 2-10. HA1630Q05 Input Offset Voltage vs. Ambient Temperature ...

Page 12

... HA1630Q04/05/06 Series 100 100 100 100 Open Loop Voltage Gain and Phase Angle vs. Frequency 100 −20 −40 10 100 Rev.1.00 Mar 10, 2006 page Figure 2-12. HA1630Q05 Power Supply Rejection Ratio vs. Frequency 1k 10k Frequency f (Hz) Figure 2-13 ...

Page 13

... HA1630Q04/05/06 Series Figure 2-15. HA1630Q05 Input Bias Current vs. Ambient Temperature 200 100 0 −100 −200 Ambient Temperature Ta (°C) Figure 2-17. HA1630Q05 Slew Rate (rising) vs. Ambient Temperature −40 − Ambient Temperature Ta (°C) Figure 2-19. HA1630Q05 Large Signal Transient Response 2 ...

Page 14

... HA1630Q04/05/06 Series Figure 2-21. HA1630Q05 Total Harmonic Distortion + Noise vs. Output Voltage p 3 25°C Gain = 0.1 0.01 0.001 0 0.5 1.0 1.5 Output Voltage Vout p-p (V) 3.5 3.0 Gain = 40 dB, 2 0.03 Vp-p IN 2.0 1.5 1.0 0 Figure 2-24. HA1630Q05 Voltage Noise Density vs. Frequency 200 160 120 100 1k Frequency f (Hz) Rev.1.00 Mar 10, 2006 page ...

Page 15

... HA1630Q04/05/06 Series Main Characteristics (HA1630Q06) Figure 3-1. HA1630Q06 Supply Current vs. Supply Voltage 1600 1200 800 400 Supply Voltage V Figure 3-3. HA1630Q06 Output High Voltage vs. Output Source Current 200 400 Output Source Current I Figure 3-5. HA1630Q06 Output Source Current vs ...

Page 16

... HA1630Q04/05/06 Series Figure 3-6. HA1630Q06 Output Low Voltage vs. Output Sink Current Output Sink Current I Figure 3-8. HA1630Q06 Input Offset Voltage Distribution 25° 3 −4 −3 −2 −1 0 Input Offset Voltage V Figure 3-10. HA1630Q06 Input Offset Voltage vs. Ambient Temperature ...

Page 17

... HA1630Q04/05/06 Series 100 100 100 100 Open Loop Voltage Gain and Phase Angle vs. Frequency 100 −20 −40 10 100 Rev.1.00 Mar 10, 2006 page Figure 3-12. HA1630Q06 Power Supply Rejection Ratio vs. Frequency 1k 10k Frequency f (Hz) Figure 3-13 ...

Page 18

... HA1630Q04/05/06 Series Figure 3-15. HA1630Q06 Input Bias Current vs. Ambient Temperature 200 100 0 −100 −200 Ambient Temperature Ta (°C) Figure 3-17. HA1630Q06 Slew Rate (rising) vs. Ambient Temperature −40 − Ambient Temperature Ta (°C) Figure 3-19. HA1630Q06 Large Signal Transient Response 2 ...

Page 19

... HA1630Q04/05/06 Series Figure 3-21. HA1630Q06 Total Harmonic Distortion + Noise vs. Output Voltage p 3 25°C Gain = 0.1 0.01 0.001 0 0.5 1.0 1.5 Output Voltage Vout p-p (V) 3.5 3.0 Gain = 40 dB, 2 0.03 Vp-p IN 2.0 1.5 1.0 0 Figure 3-24. HA1630Q06 Voltage Noise Density vs. Frequency 200 160 120 100 1k Frequency f (Hz) Rev.1.00 Mar 10, 2006 page ...

Page 20

... HA1630Q04/05/06 Series Test Circuits 1. Power Supply Rejection Ratio, PSRP & Voltage Offset − Supply Current − Output High Voltage − IN1 IN2 5. Output Low Voltage − ...

Page 21

... HA1630Q04/05/06 Series 6. Output Source Current, I OSOURCE V DD − IN1 IN2 7. Common Mode Input Voltage − Total Harmonic Distortion, THD Gain Variable − Slew Rate − MΩ ...

Page 22

... HA1630Q04/05/06 Series Package Dimensions JEITA Package Code RENESAS Code P-TSSOP14-4.4x5-0.65 PTSP0014JA Index mark Rev.1.00 Mar 10, 2006 page Previous Code MASS[Typ.] TTP-14DV 0.05g F 8 Terminal cross section ( Ni/Pd/Au plating ) NOTE) 1. DIMENSIONS"*1 (Nom)"AND"*2" DO NOT INCLUDE MOLD FLASH. ...

Page 23

... HA1630Q04/05/06 Series Taping & Reel Specification [Taping] Package Code W TSSOP-14 12 Cover Tape K 0 [Reel] Package Tape width TSSOP-14 12 [Ordering Information] Ordering Unit 2,000 pcs Mark Indication 14 (1) (2) (3) (4) (5) (6) (7) (8) (9) (10) (11) (12) 1 Index hole Rev.1.00 Mar 10, 2006 page ...

Page 24

Keep safety first in your circuit designs! 1. Renesas Technology Corp. puts the maximum effort into making semiconductor products better and more reliable, but there is always the possibility that trouble may occur with them. Trouble with semiconductors may lead ...

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