NEC ne687m13 Datasets

Page 1
NEC's NPN SILICON TRANSISTOR
1. Emitter
2. Base
3. Collector
PIN CONNECTIONS
0.125
+0.1
ñ0.05
0.5±0.05
0.1
0.1
0.2
+0.1
ñ0.05
0.35
0.7
0.35
0.15
+0.1
ñ0.05
0.15
+0.1
ñ0.05
1.0
+0.1
ñ0.05
0.5
+0.1 ñ0.05
0.7±0.05
1
2
3
W2
0.3
0.2 0.2
(Bottom View)
NE687M13
FEATURES
• NEW MINIATURE M13 PACKAGE:
– Small transistor outline – 1.0 X 0.5 X 0.5 mm – Low profile / 0.50 mm package height – Flat lead style for better RF performance
• HIGH GAIN BANDWIDTH PRODUCT:
f
T = 14 GHz
• LOW NOISE FIGURE:
NF = 1.4 dB at 2 GHz
DESCRIPTION
NEC's NE687M13 transistor is designed for low noise, high gain, and low cost requirements. This high f for very low voltage/low current designs for portable wireless communications and cellular radio applications. NEC's new low profile/flat lead style "M13" package is ideal for today's portable wireless applications.
T part is well suited
OUTLINE DIMENSIONS
PACKAGE OUTLINE M13
(Units in mm)
ELECTRICAL CHARACTERISTICS (TA = 25°C)
PART NUMBER NE687M13
EIAJ1 REGISTERED NUMBER 2SC5618
PACKAGE OUTLINE M13
SYMBOLS PARAMETERS AND CONDITIONS UNITS MIN TYP MAX
fT Gain Bandwidth at VCE = 2 V, IC = 20 mA, f = 2 GHz GHz 9.0 14.0
2
|S21E|
hFE Forward Current Gain at VCE = 2 V, IC = 20 mA,
Notes:
1. Electronic Industrial Association of Japan.
2. Pulsed measurement, pulse width ≤ 350 µs, duty cycle ≤ 2 %.
3. Capacitance is measured with emitter and case connected to the guard terminal of the bridge.
ICBO Collector Cutoff Current at VCB = 5 V, IE = 0 µA 0.1
IEBO Emitter Cutoff Current at VEB = 1 V, IC = 0 µA 0.1
CRE Feedback Capacitance at VCB = 2 V, IE = 0, f = 1 MHz,
VCE = 1 V, IC = 10 mA, f = 2 GHz GHz 7.0 12.0
VCE = 1 V, IC = 3 mA, f = 2 GHz, Zs = Zopt dB 1.5 2.0
Insertion Power Gain at VCE = 2 V, IC = 20 mA, f = 2 GHz dB 8.5 10.0 VCE = 1 V, IC = 10 mA, f = 2 GHz dB 6.0 9.0
Note 2
Note 3
70 130
pF 0.4 0.8
California Eastern Laboratories
Page 2
NE687M13
ABSOLUTE MAXIMUM RATINGS
1
(TA = 25°C)
SYMBOLS PARAMETERS UNITS RATINGS
VCBO Collector to Base Voltage V 5.0
CEO Collector to Emitter Voltage V 3.0
V
V
EBO Emitter to Base Voltage V 2.0
C Collector Current mA 30
I
P
T Total Power Dissipation
2
mW 90
TJ Junction Temperature °C 150
TSTG Storage Temperature °C -65 to +150
Notes:
1. Operation in excess of any one of these parameters may result in permanent damage.
2. With device mounted on 1.08 cm2 X 1.2 mm glass epoxy board.
TYPICAL PERFORMANCE CURVES (TA = 25°C)
TOTAL POWER DISSIPATION vs.
300
250
(mW)
tot
200
AMBIENT TEMPERATURE
Mounted on Glass Epoxy PCB
2
(1.08 cm
× 1.0 mm (t) )
ORDERING INFORMATION
PART NUMBER QUANTITY
NE687M13-A
NE687M13-T3-A
REVERSE TRANSFR CAPACITANCE vs.
COLLECTOR TO BASE VOLTAGE
0.6
(pF)
re
0.5
0.4
f = 1 MHz
150
100
90
50
Total Power Dissipation, P
0
25 50 75 100 125 150
Ambient Temperature, TA (°C)
COLLECTOR CURRENT vs.
BASE TO EMITTER VOLTAGE
100
VCE = 2 V
10
(mA)
1
C
0.1
0.01
Collector Current, I
0.001
0.0001
Base to Emmiter Voltage, VBE (V)
0.70.5 0.60.4 0.8 0.9
1.0
0.3
0.2
0.1
Reverse Transfer Capacitance, C
012345
Collector to Base Voltage, VCB (V)
COLLECTOR CURRENT vs.
COLLECTOR TO EMITTER VOLTAGE
35
µ
IB : 50 A step
µ
300 A
µ
200 A
µ
100 A
(mA)
C
400 A
µ
µ
500 A
30
25
20
15
10
Collector Current, I
5
012
IB = 50 A
µ
3
Collector to Emmiter Voltage, VCE (V)
4
Page 3
TYPICAL PERFORMANCE CURVES (TA = 25°C)
NE687M13
1000
FE
100
DC Current Gain, H
10
35
30
(dB)
2
|
25
21e
20
DC CURRENT GAIN
vs. COLLECTOR CURRENT
VCE = 2 V
1100.1 100
Collector Current, IC (mA)
INSERTION POWER GAIN,
MAG, MSG vs. FREQUENCY
VCE = 1 V I
C
= 10 mA
MSG
MAG
GAIN BANDWIDTH PRODUCT
vs. COLLECTOR CURRENT
16
VCE = 2 V f = 2 GHz
14
(GHz)
12
T
10
8
6
4
2
Gain Bandwidth Product, f
0
Collector Current, IC (mA)
INSERTION POWER GAIN,
MAG, MSG vs. FREQUENCY
35
30
(dB)
2
|
25
21e
20
101 100
MSG
MAG
VCE = 2 V I
C
= 10 mA
15
10
5
Maximum Stable Gain, MSG(dB)
Insertion Power Gain, |S
Maximum Available Gain, MAG(dB)
0
0.1 1 10
Frequency, f (GHz)
INSERTION POWER GAIN, MAG, MSG
vs. COLLECTOR CURRENT
20
(dB)
2
|
15
21e
10
5
VCE = 2 V
Maximum Stable Gain, MSG(dB)
Insertion Power Gain, |S
f = 1 GHz
Maximum Available Gain, MAG(dB)
0
1 10 100
MSG
15
2
|S
21e
|
10
5
Maximum Stable Gain, MSG(dB)
Insertion Power Gain, |S
Maximum Available Gain, MAG(dB)
0
0.1 1 10
2
|S
21e
|
Frequency, f (GHz)
INSERTION POWER GAIN, MAG, MSG
vs. COLLECTOR CURRENT
MAG
2
|S
21e
|
20
VCE = 2 V
(dB)
2
|
21e
Insertion Power Gain, |S
f = 2 GHz
15
MSG
10
5
Maximum Stable Gain, MSG(dB)
Maximum Available Gain, MAG(dB)
0
1 10 100
MAG
2
|S
21e
|
Collector Current, IC (mA)
Collector Current, IC (mA)
Page 4
NE687M13
TYPICAL PERFORMANCE CURVES (TA = 25°C)
NOISE FIGURE, ASSOCIATED GAIN
vs. COLLECTOR CURRENT
5
VCE = 1 V f = 1 GHz
G
4
3
2
Noise Figure, NF (dB)
1
0
1 10 100
a
NF
Collector Current, IC (mA)
NOISE FIGURE, ASSOCIATED GAIN
vs. COLLECTOR CURRENT
5
VCE = 1 V f = 1.5 GHz
4
G
3
a
20
16
(dB)
a
12
8
Associated Gain, G
4
0
20
16
(dB)
a
12
NOISE FIGURE, ASSOCIATED GAIN
vs. COLLECTOR CURRENT
5
V
CE = 2 V
f = 1 GHz
4
3
2
Noise Figure, NF (dB)
1
0
1 10 100
G
a
NF
Collector Current, IC (mA)
NOISE FIGURE, ASSOCIATED GAIN
vs. COLLECTOR CURRENT
5
VCE = 2 V f = 1.5 GHz
4
G
a
3
20
16
(dB)
a
12
8
Associated Gain, G
4
0
20
16
(dB)
a
12
2
NF
Noise Figure, NF (dB)
1
0
1 10 100
Collector Current, I
NOISE FIGURE, ASSOCIATED GAIN
vs. COLLECTOR CURRENT
5
VCE = 1 V f = 2 GHz
4
3
G
a
2
NF
Noise Figure, NF (dB)
1
0
1 10 100
C (mA)
8
Associated Gain, G
4
0
20
16
(dB)
a
12
8
Associated Gain, G
4
0
2
NF
Noise Figure, NF (dB)
1
0
1 10 100
Collector Current, IC (mA)
NOISE FIGURE, ASSOCIATED GAIN
vs. COLLECTOR CURRENT
5
VCE = 2 V f = 2 GHz
4
3
2
Noise Figure, NF (dB)
1
0
1 10 100
G
a
NF
8
Associated Gain, G
4
0
20
16
(dB)
a
12
8
Associated Gain, G
4
0
Collector Current, IC (mA)
Collector Current, IC (mA)
Page 5
TYPICAL SCATTERING PARAMETERS
NE687M13
j10
0
10
j25
25
S11
50
j50
S22
100
j100
+135º
S21
+180º
+90º
S12
5
10
15
+45º
20 25
-j10
-45º
-j25
-j50
-j100
Coordinates in Ohms
Frequency in GHz
VCE = 1 V, IC = 10 mA
-135º
-90º
NE687M13 VCE = 1 V, IC = 10 mA
Frequency S11 S21 S12 S22 K MAG
GHz MAG ANG MAG ANG MAG ANG MAG ANG (dB)
0.100 0.71 -28.83 21.86 158.87 0.02 76.89 0.86 -22.59 0.19 29.94
0.200 0.64 -56.70 19.01 141.86 0.04 64.05 0.75 -40.78 0.28 27.02
0.300 0.57 -77.87 16.05 129.44 0.05 57.48 0.63 -54.59 0.37 25.16
0.400 0.53 -94.58 13.57 120.29 0.06 54.28 0.54 -64.96 0.46 23.79
0.500 0.49 -107.39 11.62 113.50 0.06 52.33 0.47 -72.99 0.54 22.68
0.600 0.45 -120.85 9.91 108.06 0.07 51.39 0.37 -78.86 0.68 21.71
0.700 0.44 -129.42 8.73 103.77 0.07 51.70 0.33 -85.54 0.74 20.83
0.800 0.44 -135.99 7.80 100.31 0.08 52.15 0.30 -90.17 0.79 20.04
0.900 0.43 -141.83 7.02 97.30 0.08 52.52 0.28 -94.31 0.83 19.34
1.000 0.43 -146.64 6.38 94.61 0.09 53.11 0.26 -99.34 0.88 18.67
1.200 0.42 -153.87 5.40 90.05 0.10 54.26 0.23 -106.29 0.94 17.49
1.400 0.42 -160.59 4.69 86.18 0.11 55.29 0.21 -113.29 0.99 16.45
1.600 0.42 -165.22 4.14 82.82 0.12 56.05 0.19 -118.74 1.03 14.43
1.800 0.42 -169.18 3.71 79.73 0.13 56.51 0.18 -123.68 1.06 13.15
2.000 0.41 -172.49 3.37 76.86 0.14 56.83 0.17 -128.17 1.08 12.13
2.500 0.40 179.29 2.76 70.23 0.16 56.91 0.16 -136.91 1.12 10.14
3.000 0.40 171.08 2.35 64.05 0.19 55.87 0.17 -143.47 1.14 8.61
3.500 0.39 161.33 2.05 58.49 0.21 54.71 0.18 -147.06 1.16 7.38
4.000 0.40 152.78 1.83 53.56 0.24 53.37 0.20 -147.25 1.16 6.41
4.500 0.39 146.02 1.66 49.23 0.26 52.04 0.22 -144.73 1.16 5.60
5.000 0.38 141.59 1.53 45.35 0.29 50.81 0.23 -140.61 1.15 4.94
5.500 0.36 138.25 1.44 41.63 0.31 49.38 0.23 -135.48 1.14 4.40
6.000 0.34 134.43 1.36 37.72 0.34 47.54 0.23 -133.06 1.13 3.90
+0º+0º
1
Note:
1. Gain Calculations:
MAG =
|S
21
|
(
12
|
|S
K ±
2
K - 1
).
MAG = Maximum Available Gain MSG = Maximum Stable Gain
When K ≤ 1, MAG is undefined and MSG values are used.
MSG =
21
|
|S
, K =
|S
12
|
2
1 + | ∆ | - |S
2 |S
12 S21
11
2
| - |S22|
|
2
∆ = S
,
11 S22
- S21 S
12
Page 6
NE687M13
TYPICAL SCATTERING PARAMETERS
j25
j50
j100
+135º
+90º
+45º
j10
S11
10
0
25
50
100
+180º
S21
S12
10
15
5
S22
-j10
-45º
-j25
-j50
-j100
Coordinates in Ohms
Frequency in GHz
V
CE = 2 V, IC = 5 mA
-135º
-90º
NE687M13 VCE = 2 V, IC = 5 mA
Frequency S11 S21 S12 S22 K MAG
GHz MAG ANG MAG ANG MAG ANG MAG ANG (dB)
0.100 0.86 -14.28 13.53 167.49 0.02 80.25 0.94 -11.88 0.14 28.47
0.200 0.81 -31.85 12.83 155.13 0.04 71.73 0.89 -22.74 0.17 25.34
0.300 0.76 -46.05 11.91 144.78 0.05 65.56 0.82 -32.21 0.22 23.61
0.400 0.70 -59.23 10.91 135.97 0.06 60.40 0.75 -39.96 0.28 22.37
0.500 0.65 -70.68 9.95 128.54 0.07 56.24 0.68 -46.33 0.34 21.38
0.600 0.58 -82.92 8.87 121.33 0.08 52.47 0.58 -49.51 0.47 20.54
0.700 0.54 -91.97 8.07 116.01 0.08 50.58 0.53 -54.17 0.52 19.81
0.800 0.52 -99.97 7.39 111.61 0.09 49.44 0.48 -57.43 0.57 19.16
0.900 0.49 -107.10 6.76 107.73 0.09 48.55 0.44 -59.80 0.62 18.56
1.000 0.48 -113.24 6.24 104.20 0.10 47.85 0.41 -63.07 0.66 18.02
1.200 0.45 -123.52 5.38 98.29 0.11 47.62 0.36 -66.56 0.75 17.05
1.400 0.43 -132.69 4.72 93.40 0.11 47.64 0.32 -70.62 0.82 16.19
1.600 0.41 -139.56 4.20 89.17 0.12 48.14 0.29 -73.13 0.88 15.41
1.800 0.40 -145.30 3.78 85.45 0.13 48.60 0.27 -75.54 0.94 14.70
2.000 0.39 -150.12 3.45 82.00 0.14 49.16 0.25 -77.78 0.98 14.05
2.500 0.37 -161.26 2.84 74.35 0.16 50.11 0.22 -83.87 1.07 11.05
3.000 0.36 -171.52 2.42 67.39 0.18 50.31 0.21 -91.33 1.12 9.30
3.500 0.35 176.69 2.12 61.12 0.20 50.27 0.22 -98.64 1.15 7.96
4.000 0.34 166.32 1.88 55.53 0.22 49.84 0.23 -104.18 1.17 6.92
4.500 0.34 158.42 1.70 50.63 0.23 49.50 0.26 -106.91 1.18 6.08
5.000 0.34 153.42 1.56 46.37 0.25 49.25 0.28 -106.70 1.17 5.40
5.500 0.32 150.03 1.46 42.49 0.27 48.86 0.30 -104.89 1.16 4.85
6.000 0.30 146.33 1.38 38.57 0.30 48.07 0.31 -104.37 1.15 4.35
+0º+0º
1
Note:
1. Gain Calculations:
MAG =
|S
21
|
(
12
|
|S
K ±
2
K - 1
).
MAG = Maximum Available Gain MSG = Maximum Stable Gain
When K ≤ 1, MAG is undefined and MSG values are used.
MSG =
21
|
|S
, K =
|S
12
|
2
1 + | ∆ | - |S
2 |S
12 S21
11
2
| - |S22|
|
2
,
∆ = S
11 S22
- S21 S
12
Page 7
TYPICAL SCATTERING PARAMETERS
NE687M13
j25
j50
j100
+135º
+90º
+45º
j10
S11
10
0
25
50
100
+180º
S21
S12
10
20 30
40
S22
-j10
-45º
-j25
-j50
-j100
Coordinates in Ohms
Frequency in GHz
VCE = 2 V, IC = 20 mA
-135º
-90º
NE687M13 VCE = 2 V, IC = 20 mA
Frequency S11 S21 S12 S22 K MAG
GHz MAG ANG MAG ANG MAG ANG MAG ANG (dB)
0.100 0.57 -36.15 31.49 154.52 0.01 71.95 0.81 -25.05 0.34 33.26
0.200 0.50 -67.88 25.71 135.92 0.03 66.14 0.67 -43.58 0.42 29.76
0.300 0.45 -90.13 20.68 123.67 0.03 60.45 0.54 -56.22 0.54 27.77
0.400 0.42 -106.56 16.96 115.24 0.04 59.44 0.46 -64.85 0.64 26.19
0.500 0.40 -118.50 14.25 109.26 0.05 59.55 0.39 -71.22 0.71 24.88
0.600 0.37 -131.65 12.07 104.60 0.05 60.02 0.30 -75.54 0.84 23.77
0.700 0.37 -139.21 10.55 100.88 0.06 60.94 0.26 -81.03 0.89 22.75
0.800 0.37 -144.73 9.37 97.86 0.06 61.83 0.24 -84.22 0.92 21.84
0.900 0.37 -149.66 8.41 95.24 0.07 62.31 0.21 -87.05 0.95 21.02
1.000 0.36 -153.80 7.62 92.90 0.07 62.97 0.20 -91.25 0.98 20.26
1.200 0.37 -159.66 6.43 88.88 0.08 63.94 0.17 -96.57 1.02 18.15
1.400 0.37 -165.38 5.56 85.48 0.09 64.61 0.15 -102.15 1.05 16.47
1.600 0.37 -169.31 4.90 82.45 0.10 64.72 0.14 -106.18 1.07 15.17
1.800 0.37 -172.61 4.39 79.67 0.11 64.87 0.13 -109.91 1.08 14.10
2.000 0.36 -175.37 3.98 77.07 0.13 64.81 0.12 -113.45 1.09 13.16
2.500 0.36 177.29 3.24 70.97 0.15 63.80 0.11 -121.12 1.11 11.27
3.000 0.35 169.69 2.75 65.26 0.18 62.10 0.12 -128.22 1.12 9.76
3.500 0.35 160.03 2.39 60.01 0.21 60.09 0.14 -133.08 1.12 8.53
4.000 0.36 151.53 2.12 55.28 0.23 58.20 0.16 -134.34 1.12 7.54
4.500 0.36 144.75 1.92 51.05 0.25 56.51 0.18 -132.06 1.12 6.71
5.000 0.35 140.37 1.76 47.24 0.28 54.88 0.20 -127.09 1.11 6.03
5.500 0.33 137.20 1.65 43.56 0.30 53.20 0.21 -120.86 1.10 5.48
6.000 0.31 133.76 1.55 39.78 0.33 51.20 0.21 -117.44 1.09 4.95
+0º+0º
1
Note:
1. Gain Calculations:
MAG =
|S
21|
(K ±
12|
|S
2
K - 1 ).
When K ≤ 1, MAG is undefined and MSG values are used.
MSG =
|S
, K =
|S
12|
21|
2
1 + | ∆ | - |S
2 |S12 S21|
11| - |S22|
2
2
∆ = S
,
11 S22 - S21 S12
MAG = Maximum Available Gain MSG = Maximum Stable Gain
Life Support Applications These NEC products are not intended for use in life support devices, appliances, or systems where the malfunction of these products can reasonably be expected to result in personal injury. The customers of CEL using or selling these products for use in such applications do so at their own risk and agree to fully indemnify CEL for all damages resulting from such improper use or sale.
CALIFORNIA EASTERN LABORATORIES • Headquarters • 4590 Patrick Henry Drive • Santa Clara, CA 95054-1817 • (408) 988-3500 • Telex 34-6393 • FAX (408) 988-0279
DATA SUBJECT TO CHANGE WITHOUT NOTICE
EXCLUSIVE NORTH AMERICAN AGENT FOR NEC RF, MICROWAVE & OPTOELECTRONIC SEMICONDUCTORS
Internet: http://WWW.CEL.COM
06/13/2002
Page 8
4590 Patrick Henry Drive
(
Santa Clara, CA 95054-1817 Telephone: (408) 919-2500 Facsimile:
408) 988-0279
Subject: Compliance with EU Directives
CEL certifies, to its knowledge, that semiconductor and laser products detailed below are compliant with the requirements of European Union (EU) Directive 2002/95/EC Restriction on Use of Hazardous Substances in electrical and electronic equipment (RoHS) and the requirements of EU Directive 2003/11/EC Restriction on Penta and Octa BDE.
CEL Pb-free products have the same base part number with a suffix added. The suffix –A indicates that the device is Pb-free. The –AZ suffix is used to designate devices containing Pb which are exempted from the requirement of RoHS directive (*). In all cases the devices have Pb-free terminals. All devices with these suffixes meet the requirements of the RoHS directive.
This status is based on CEL’s understanding of the EU Directives and knowledge of the materials that go into its products as of the date of disclosure of this information.
Restricted Substance
per RoHS
Lead (Pb) < 1000 PPM
Concentration Limit per RoHS
(values are not yet fixed)
Concentration contained
in CEL devices
-A -AZ
Not Detected (*)
Mercury < 1000 PPM Not Detected
Cadmium < 100 PPM Not Detected
Hexavalent Chromium < 1000 PPM Not Detected
PBB < 1000 PPM Not Detected
PBDE < 1000 PPM Not Detected
If you should have any additional questions regarding our devices and compliance to environmental standards, please do not hesitate to contact your local representative.
Important Information and Disclaimer: Information provided by CEL on its website or in other communications concerting the substance content of its products represents knowledge and belief as of the date that it is provided. CEL bases its knowledge and belief on information provided by third parties and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. CEL has taken and continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. CEL and CEL suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall CEL’s liability arising out of such information exceed the total purchase price of the CEL part(s) at issue sold by CEL to customer on an annual basis. See CEL Terms and Conditions for additional clarification of warranties and liability.
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