M52055 RENESAS | Alldatasheet

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To our customers, Old Company Name in Catalogs and Other Documents On April 1st, 2010, NEC Electronics Corporation merged with Renesas Technology Corporation, and Renesas Electronics Corporation took over all the business of both companies. Therefore, although the old company name remains in this document, it is a valid Renesas Electronics document. We appreciate your understanding. Renesas Electronics website: http://www.renesas.com April 1 st, 2010 Renesas Electronics Corporation Issued by: Renesas Electronics Corporation (http://www.renesas.com) Send any inquiries to http://www.renesas.com/inquiry.

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Rev.1.0, Sep.22.2003, page 1 of 13 M52055P 3-Channel Analog Switch REJ03F0083-0100Z Rev.1.0 Sep.22.2003

Description

The M52055 is semiconductor integrated circuit for electronic switches used in VCR, AUDIO signal processing applications. It contains three channel two input switch circuits with each switch is controlled independently.

Features

  • Low offset voltage at output: Typ. 5 mV UNDER
  • Low switching noise
  • Wide dynamic range
  • Wide frequency range: Typ. 40 MHz OVER
  • Low crosstalk
  • High speed response: Typ. 0.2 µs UNDER
  • Low power consumption Application
  • VCR, AUDIO, and other applications Recommended Operating Condition
  • Supply voltage range: 4.5 to 13 V Block Diagram

Rev.1.0, Sep.22.2003, page 2 of 13 Pin Configuration Absolute Maximum Rating (Unless otherwise noted, Ta = 25°C) Symbol Item Ratings Units Vcc Supply voltage 14 V Pd Power dissipation 1000 mW Topr Operating ambient temperature –20 to 75 °C Tstg Storing temperature –40 to 125 °C kθ Thermal derating 10 mW/°C Thermal Derating Curve

Rev.1.0, Sep.22.2003, page 3 of 13

Electrical Characteristics

(unless otherwise noted, the ambient temperature (Ta) = 25°C, power supply voltage (Vcc) = 9 V, and current direction = current flowing into the IC is “+”) LimitsNo. Measurement item Symbol Measurement conditions Min. Typ. Max. Unit 1 Circuit current 1 ICC1 No signal input. Measure the current flowing into pin 13 . 5.2 7.1 9.0 mA 2 Circuit current 2 ICC2 No signal input. Measure the current flowing into pin 13 with Vcc = 5 V. 2.4 3.4 4.4 mA 3F 1A –0.6 –0.1 0.4 dB S1 frequency characteristics 1A, 1B F 5F 2A –0.6 –0.1 0.4 dB S2 frequency characteristics 2A, 2B F 7F 3A –0.6 –0.1 0.4 dB S3 frequency characteristics 3A, 3B F Input: 0.5-Vpp sine wave (SG1). Voltage gain at 10-MHz frequency. E1, E2 and E3: 5 V. 2-kΩ load connected to output 9G 1A –0.6 –0.1 0.4 dB S1 voltage gain 1A, 1B G1B –0.6 –0.1 0.4 dB 11 G2A –0.6 –0.1 0.4 dB S2 voltage gain 2A, 2B G 13 G3A –0.6 –0.1 0.4 dB S3 voltage gain 3A, 3B G Input: 0.5-Vpp sine wave (SG1) Voltage gain at 1-MHz frequency E1, E2 and E3: 5 V –0.6 –0.1 0.4 dB 15 VIDC 1A 4.1 4.6 5.1 V S1 input bias voltage 1A, 1B VIDC 1B 4.1 4.6 5.1 V 17 VIDC 2A 4.1 4.6 5.1 V S2 input bias voltage 2A, 2B V IDC 2B 4.1 4.6 5.1 V 19 VIDC 3A 4.1 4.6 5.1 V S3 input bias voltage 3A, 3B V IDC 3B No signal input. DC voltage at input pin. 4.1 4.6 5.1 V 21 S1 output bias voltage VODC 1 3.05 3.2 3.35 V 22 S2 output bias voltage VODC 2 3.05 3.2 3.35 V

23 S3 output bias voltage VODC 3

No signal input. DC voltage at output pin. Pins 2, 7 and 12 connected to GND. 3.05 3.2 3.35 V 24 IIN 11 0.35 0.6 1 mA 25 IIN 12 0.35 0.6 1 mA Current flow into control pins 1: S1, S2, S3 IIN 13 Current flow into each of pins 2, 7 and 12 when these pin voltage is 9 V. 0.35 0.6 1 mA 27 IIN 21 0 1.5 10 µA 28 IIN 22 0 1.5 10 µA Current flow into control pins 2: S1, S2, S3 IIN 23 Current flow into each of pins 2, 7 and 12 when these pin voltage is 5 V. 01 . 5 1 0 µA

30 IIN 31 –5 0 2 µA

31 IIN 32 –5 0 2 µA

Current flow into control pins 3: S1, S2, S3 IIN 33 Current flow into each of pins 2, 7 and 12 when these pin voltage is 0 V. –5 0 2 µA 33a VIC1L 1.7 — 2.7 V 33b VIC1H 1.7 — 2.7 V 34a VIC2L 1.7 — 2.7 V 34b VIC2H 1.7 — 2.7 V 35a VIC3L 1.7 — 2.7 V 35b Threshold voltage S1, S2, VIC3H Input: 0.5-Vpp sine wave, f = 1 MHz (SG1).*1 *2 1.7 — 2.7 V

Rev.1.0, Sep.22.2003, page 4 of 13 Electrical Characteristics (cont) LimitsNo. Measurement item Symbol Measurement conditions Min. Typ. Max. Unit

36 H1A — –60 –50 dB

S1 2nd harmonic distortion 1A, 1B H1B — –60 –50 dB

38 H2A — –60 –50 dB

S2 2nd harmonic distortion 2A, 2B H 2B — –60 –50 dB

40 S3 2nd harmonic distortion 3A H 3A

Input: 4.5-Vpp sine wave, f = 5 MHz (SG1). E1, E2 and E3: 5 V Voltage ratio of 10-MHz output element against 5-MHz output element 2-kΩ load connected to output pin — –60 –50 dB 41 S3 2nd harmonic distortion H 3B Input: 4.5-Vpp sine wave, f = 5 MHz (SG1). — –60 –50 dB 42 THD1A — 0.05 0.2 % S1 total harmonic distortion ratio 1A, 1B THD1B — 0.05 0.2 % 44 THD2A — 0.05 0.2 % S2 total harmonic distortion ratio 2A, 2B THD2B — 0.05 0.2 % 46 THD3A — 0.05 0.2 % S3 total harmonic distortion ratio 3A, 3B THD3B Measure THD with sine wave input of 1 Vrms and f = 5 MHz (SG1). E1, E2 and E3: 5 V. — 0.05 0.2 %

48 CT11 — –70 –60 dB

1B-1A, 1A-1B CT12 — –70 –60 dB

50 CT21 — –70 –60 dB

2B-2A, 2A-2B CT22 — –70 –60 dB

52 CT31 — –70 –60 dB

3B-3A, 3A-3B CT32 Input: 0.5-Vpp sine wave, f = 5 MHz (SG1). Voltage ratio of non-input-side output against input-side output when the non-input-side pin is connected to GND with 0.01 µF. E1, E2 and E3: 5 V — –70 –60 dB

54 CT13 — –70 –60 dB

55 CT14 — –70 –60 dB

56 CT15 — –70 –60 dB

S1 crosstalk between channels 2A-1A, 2B-1A, 3A-1A, 3B-1A CT16 — –70 –60 dB

58 CT17 — –70 –60 dB

59 CT18 — –70 –60 dB

60 CT19 — –70 –60 dB

2A-1B, 2B-1B, 3A-1B, 3B-1B CT1A — –70 –60 dB

62 CT23 — –70 –60 dB

63 CT24 — –70 –60 dB

64 CT25 — –70 –60 dB

S2 crosstalk between channels 1A-2A, 1B-2A, 3A-2A, 3B-2A CT26 — –70 –60 dB

66 CT27 — –70 –60 dB

67 CT28 — –70 –60 dB

68 CT29 — –70 –60 dB

1A-2B, 1B-2B, 3A-2B, 3B-2B CT2A — –70 –60 dB

70 CT33 — –70 –60 dB

71 CT34 — –70 –60 dB

72 CT35 — –70 –60 dB

S3 crosstalk between channels 1A-3A, 1B-3A, 2A-3A, 2B-3A CT36 — –70 –60 dB

74 CT37 — –70 –60 dB

75 CT38 — –70 –60 dB

76 CT39 — –70 –60 dB

1A-3B, 1B-3B, 2A-3B, 2B-3B CT3A Input: 0.5-Vpp sine wave, f = 5 MHz (SG1). Voltage ratio of no-input-side output against input-side output when no-input-side pin is connected to GND with 0.01 µF. E1, E2 and E3: 5 V — –70 –60 dB

Rev.1.0, Sep.22.2003, page 5 of 13 Electrical Characteristics (cont) LimitsNo. Measurement item Symbol Measurement conditions Min. Typ. Max. Unit

78 S1 output

VOS1 –10 0 10 mV

79 S2 output

VOS2 –10 0 10 mV

80 S3 output

No signal input. E1, E2 and E3: 5 V. DC voltage difference in output.*3 –10 0 10 mV 81a VIC4L 1.3 — 2.3 V 81b VIC4H 1.3 — 2.3 V 82a VIC5L 1.3 — 2.3 V 82b VIC5H 1.3 — 2.3 V 83a VIC6L 1.3 — 2.3 V 83b Threshold voltage (Vcc = 5 V) S1, S2, S3 V IC6H Input: 0.5-Vp-p sine wave, f = 1 MHz (SG1). Vcc = 5 V.*4 *5 1.3 — 2.3 V 84a VIC7L 2.0 — 3.0 V 84b VIC7H 2.0 — 3.0 V 85a VIC8L 2.0 — 3.0 V 85b VIC8H 2.0 — 3.0 V 86a VIC9L 2.0 — 3.0 V 86b Threshold voltage (Vcc = 12 V) S1, S2, S3 V IC9H Input: 0.5-Vp-p sine wave, f = 1 MHz (SG1). Vcc = 12 V.*6 *7 2.0 — 3.0 V

Rev.1.0, Sep.22.2003, page 6 of 13 Typical Characteristics

Rev.1.0, Sep.22.2003, page 7 of 13 Method to Measure Electric Characteristics 1. Measurement Circuit

Rev.1.0, Sep.22.2003, page 8 of 13

2 Measurement Conditions

Switch statusNo. Symbol S1 S2 S3 S4 S5 S6 S7 S8 S9 S10 S11 S12 Point to be measured 1I CC1 aaadbb A1 2I CC2 aaadbb A1 3F 1A a a abbbbbaV 1 4F 1B b aa abbbbbV 1 5F 2A a b abbbabbV 2 6F 2B b ba bbbbabV 2 7F 3A ac ababbbbV 3 8F 3B bca bbabbbV 3 9G 1A a d abbbbbaV 1

10 G 1B b da abbbbbV 1

11 G 2A a d abbbabbV 2

12 G 2B b da bbbbabV 2

13 G 3A ad ababbbbV 3

14 G 3B bda bbabbbV 3

15 V IDC 1 A a dbbaaaaabV 4

16 V IDC 1 B a dbbbaaaaaV 4

17 V IDC 2 A a dbbaaabaaV 4

18 V IDC 2 B a dbbaaaabaV 4

19 V IDC 3 A adbbabaaaaV 4

20 V IDC 3 B adbbaabaaaV 4

21 V ODC 1a dbbabbbbaV 1

22 V ODC 2 a dbbbbbaabV 2

23 V ODC 3 adbbbaabbbV 3

24 I IN 11 b d b b A2

25 I IN 12 b d b b A3

26 I IN 1 3 bdbb A4

27 I IN 21 b d b b A2

28 I IN 22 b d b b A3

29 I IN 2 3 bdbb A4

30 I IN 31 a d b b A2

31 I IN 32 a d b b A3

32 I IN 3 3 adbb A4

b Note2 35a V IC3L ba ab E3 Note1 35b V IC3H bd ab b ba bbb Note2

36 H 1A a ababbbbbaV 1

37 H 1B b aababbbbbV 1

38 H 2A a bbabbbabbV 2

39 H 2B b babbbbbabV 2

40 H 3A acbababbbbV 3

41 H 3B bcabbbabbbV 3

Rev.1.0, Sep.22.2003, page 9 of 13 Measurement Conditions (cont) Switch statusNo. Symbol S1 S2 S3 S4 S5 S6 S7 S8 S9 S10 S11 S12 Point to be measured 4 2T H D 1 A a dbabbbbbaV 1 4 3T H D 1 B b dababbbbbV 1 4 4T H D 2 A a dbabbbabbV 2 4 5T H D 2 B b dabbbbbabV 2 4 6T H D 3 A adbababbbbV 3 4 7T H D 3 B bdabbbabbbV 3 4 8C T 1 1 a aababbbbaV 1 4 9C T 1 2 b abaabbbbaV 1 5 0C T 2 1 a babbbbaabV 2 5 1C T 2 2 b bbabbbaabV 2 5 2C T 3 1 acabbaabbbV 3 5 3C T 3 2 bcbabaabbbV 3 5 4C T 1 3 ab ababbbabbV 1 5 5C T 1 4 aa aabbbbbabV 1 5 6C T 1 5 a babababbbbV 1 5 7C T 1 6 a aaabbbabbbV 1 5 8C T 1 7 bb ababbbabbV 1 5 9C T 1 8 ba aabbbbbabV 1 6 0C T 1 9 b babababbbbV 1 6 1C T 1 A b aaabbbabbbV 1 6 2C T 2 3 ba bbabbbbbaV 2 6 3C T 2 4 aa bababbbbbV 2 6 4C T 2 5 abbbababbbbV 2 6 5C T 2 6 aababbbabbbV 2 6 6C T 2 7 bb bbabbbbbaV 2 6 7C T 2 8 ab bababbbbbV 2 6 8C T 2 9 bbbbababbbbV 2 6 9C T 2 A bababbbabbbV 2 7 0C T 3 3 b acbabbbbbaV 3 7 1C T 3 4 a acababbbbbV 3 7 2C T 3 5 bacbabbbabbV 3 7 3C T 3 6 aacabbbbbabV 3 7 4C T 3 7 b bcbabbbbbaV 3 7 5C T 3 8 a bcababbbbbV 3 7 6C T 3 9 bbcbabbbabbV 3 7 7C T 3 A abcabbbbbabV 3

78 V OS1a

b dbbabbbbaV 1 Note3

79 V OS2a

b dbbbbbaabV 2 Note3

80 V OS3a

b dbbbaabbbV 3 Note3

Rev.1.0, Sep.22.2003, page 10 of 13 Measurement Conditions (cont) Switch statusNo. Symbol S1 S2 S3 S4 S5 S6 S7 S8 S9 S10 S11 S12 Point to be measured 81a V IC4L bab aE 1 Note4 81b V IC4H bd aba bbbb bE 1 Note5 82a V IC5L ba ab E 2 Note4 82b V IC5H bd ab bbb ba b Note5 83a V IC6L ba ab E3 Note4 83b V IC6H bd ab b ba bbb Note5 84a V IC7L bab aE 1 Note6 84b V IC7H bd aba bbbb bE 1 Note7 85a V IC8L ba ab E 2 Note6 85b V IC8H bd ab bbb ba b Note7 86a V IC9L ba ab E3 Note6 86b V IC9H bd ab b ba bbb Note7 Notes: 1. For V IC1L, VIC2L and VIC3L, respectively read the E1, E2 and E3 voltage when their output amplitudes are 0.5 dB smaller than those of V1, V2 and V3 in measuring G1A in No. 9, G2A in No. 11 and G3A in No. 13. 2. For V IC1H, VIC2H and VIC3H, respectively read the E1, E2 and E3 voltage when their output amplitudes are 0.5 dB smaller than those of V1, V2 and V3 in measuring G1B in No. 10, G2B in No. 12 and G3B in No. 14. 3. Read the potential difference “V OS” = VH - VL, where VL indicates output voltage when the control voltage is 0 V and VH indicates output voltage when the control voltage is 5 V. 4. Vcc = 5 V. For VIC4L, VIC5L and VIC6L, respectively read the E1, E2 and E3 voltage when their output amplitudes are 1.0 dB smaller than those of V1, V2 and V3 in measuring G1A in No. 9, G2A in No. 11 and G3A in No. 13. 5. Vcc = 5 V. For VIC4H, VIC5H and VIC6H, respectively read the E1, E2 and E3 voltage when their output amplitudes are 1.0 dB smaller than those of V1, V2 and V3 in measuring G1B in No. 10, G2B in No. 12 and G3B in No. 14. 6. Same as 4 above except Vcc = 12 V. 7. Same as 5 above except Vcc = 12 V.

Rev.1.0, Sep.22.2003, page 11 of 13 Application Example

Rev.1.0, Sep.22.2003, page 12 of 13 USAGE NOTES 1. The input impedance is 20 k Ω (standard value). 2. Output drive current should be 5 mA or less when using this IC. 3. Note that voltage applied to the control pins (pins 2, 7 and 12) should be less than the power supply voltage (Vcc) and more than the ground voltage (GND). The following shows an internal equivalent circuit coupled to a control pin. 4. Output pins are the emitter follower type. The following drive current is applied inside the IC normally. If the drive performance is insufficient, apply external drive current within the range shown in 2. Power supply voltage (Vcc) Drive cu rrent in the IC (standard value)

5 V 190 µA

9V 380 µA

12 V 530 µA

Rev.1.0, Sep.22.2003, page 13 of 13 Package Dimensions DIP16-P-300-2.54 Weight(g) JEDEC Code 1.0 Alloy 42/Cu Alloy 16P4 Plastic 16pin 300mil DIP Symbol Min Nom Max A b c E D L Dimension in Millimeters A1 0.51 − − − 3.3 0.4 0.5 0.59 1.4 1.5 1.8 0.9 1.0 1.3 0.22 0.27 0.34 18.8 19.0 19.2 6.15 6.3 6.45 2.5 7.62 3.0 0°− 15° e 16 9 E c e1 D A2 A1 b2bb1e LA SEATING PLANE MMP

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