MITEL SL2030

SL2030
High Performance Broadband Mixer Oscillator
Preliminary Information
DS5116 Issue 2.1 October 1999
Features
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Ordering Information
Single Chip Broadband Solution
Wide Dynamic Range RF Input
Low Phase Noise Balanced Internal Local Oscillator
Wide Frequency Range: 50 to 860 MHz
ESD Protection 2kV min., MIL-STD-883B Method 3015
Cat.1 (Normal ESD handling procedures should be
observed)
Applications
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Double Conversion Tuners
Digital Terrestrial Tuners
Data Transmit Systems
Data Communications Systems
The SL2030 is a bipolar, broadband wide dynamic range
mixer oscillator, optimised for applications as an
upconverter in double conversion tuner systems. It also
has application in any system where a wide dynamic range
broadband frequency converter is required.
The SL2030 is a single chip solution containing all
necessary active circuitry and simply requires an external
tuneable resonant network for the local oscillator. The block
diagram is shown in Figure 1 and pin connections are
shown in Figure 2.
In normal application the high IF output is interfaced through
appropriate impedance matching to the high IF filter. The
RF input preamplifier of the device is designed for low noise
figure within the operating region and for high
intermodulation distortion intercept so offering good signal
to noise plus composite distortion spurious performance.
The preamplifier also provides gain to the mixer section
and back isolation from the local oscillator section. The
approximate model of the RF input is shown in Figure 3.
SL2030/IG/MP1S (Tubes)
SL2030/IG/MP1T (Tape and Reel)
The output of the preamplifier is fed to the mixer section
which is optimised for low radiation application. In this stage
the RF signal is mixed with the local oscillator frequency,
which is generated by an on-chip oscillator. The oscillator
block uses an external tuneable network and is optimised
for low phase noise. A typical application is shown in
Figure 6 and the typical phase noise performance in
Figure 5. This block also contains a buffer-amplifier to
interface with an external PLL to allow for frequency
synthesis of the local oscillator.
The IF output must be loaded differentially in order to get
best intermodulation performance. The approximate model
of the IF output is shown in Figure 4.
In application care should be taken to achieve symmetric
balance to the IF outputs to maximise intermodulation
performance.
Absolute Maximum Ratings
Supply voltage, VCC
RF differential input voltage
All I/O port DC offset
Storage temperature
Junction temperature
Package thermal resistance
Chip to ambient, θJA
Chip to case, θJC
RFIN
IF1
RFIN
IF2
LO2
PRSC1
LO1
Figure 1 SL2030 block diagram
20·3V to 17V
2·5V
20·3 to VCC 10·3V
255°C to 1150°C
1150°C
20°C/W
80°C/W
SL2030
IF2
1
16
IF1
NC
GND
2
15
3
14
NC
VCC/VCO
GND
GND
4
GND
RFIN
RFIN
12
LO2
LO1
6
11
VCC/VCO
7
10
8
9
PRSC1
VCC/LNA
5
SL
2030
13
MP16
Figure 2 Pin connections - top view
Quick Reference Data
All data applies with circuit component values given in Table 1
Value
Characteristic
50-860
RF input operating frequency range
8
Input noise Figure, SSB, 50 to 860MHz
8
Conversion gain 50 to 860MHz
121
IIP3 input referred
,264
CTB (fully loaded matrix)
104
P1dB input referred
145
IIP2 input referred
,262
Composite 2nd order (fully loaded matrix)
LO phase noise at10 kHz offset, fRF 50 to 860MHz, application as in Figure 6 ,285,see Figure 5
LO leak to RF input
72
Fundamental
92
Second harmonic
Units
MHz
dB
dB
dBµV
dBc
dBµV
dBµV
dBc
dBc/Hz
dBµV
dBµV
Electrical Characteristics
Tamb = 240°C to 185°C, VCC = 5V 65%, VEE = 0V. These characteristics are guaranteed by either production test or
design. They apply within the specified ambient temperature and supply voltage ranges unless otherwise stated.
Value
Characteristic
Supply current
Input frequency range
Composite peak input signal
Input impedance
Input return loss
Conversion gain
Gain variation across
operating range
Gain variation within channel
Through gain
Noise figure
Pin
Min.
Typ.
9,11,14
7,8
7,8
7,8
7,8
50
Max.
99
mA
860
MHz
dBµV
97
25
8
10
21
6·5
Units
225
11
dB
dB
11
8
0·5
dB
220
10
dB
Conditions
IF output pins 1 and 16 will be nominally
connected to VCC through the differential
balun load as in Figure 6
Operating condition only
See Figure 3
Differential voltage gain to 50Ω load on
output of impedance transformer as in
Figure 6.
50-860MHz
Channel bandwidth 8MHz within operating
frequency range
45-865MHz
cont…
2
SL2030
Electrical Characteristics (continued)
Value
Characteristic
Pin
IIP2
IIP3
Composite 2nd order
LO operating range
12,13
LO phase noise, SSB at 10kHz
offset
IF output frequency range
LO and harmonic leakage
to RF input
Fundamental
2nd harmonic
LO Prescaler output swing
LO Prescaler output impedance
IF output impedance
Min.
Typ.
Max.
139
117
145
121
262
153
126
1·0
2·1
287
294
1,16
7,8
7,8
10
10
1,16
285
1
1·3
Units
dBµV
dBµV
dBc
GHz
Two tones at 92dBµV
Two tones at 92dBµV
128 channels at 62dBµV
Maximum tuning range 0·9GHz within
band, application as in Figure 6
dBc/Hz Application as Figure 6. See Figure 5 for
a typical device
GHz
dBµV
dBµV
dBµV
Ω
72
92
95
25
Conditions
75
To device input
To device input
Into 50Ω load
See Figure 4
6
PIN 1
PIN 7
3·3p
6
2p
820
PIN 16
PIN 8
Figure 3 Approximate model of RF input
PHASE NOISE (dBc/Hz MKRN)
325
Figure 4 Approximate model of IF output
288
289
290
291
292
50 100
200
300
400
500
600
700
800 850
RF INPUT FREQUENCY (MHz)
Figure 5 Phase noise performance
Application Notes
Figure 6 shows the SL2030 in a typical upconverter application.
The network connected to RF input pin 7 and pin 8 is to
improve the matching between the device input and the
source. The source would normally be from a cable, via
passive LPF and PlN-diode attenuator all designed for 75Ω
characteristic impedance.
The network connected to the LO pin 12 and pin 13 is a
varactor diode loaded resonant microstrip line resonator.
Fine adjustment of the tuning range can be achieved by
shortening the line (top end) or by physically moving C19
(see Figure 6) closer to the LO pins. This extends the
bottom end of the tuning range.
The network connected to the IF output pin 1 and pin 16 is
a broadband tuned balun centred typically on 1·1 GHz.
This matches the device output impedance of nominally
400Ω (balanced) to 50Ω (unbalanced).
It is important to provide good decoupling on the 5V
supplies and to use a layout which provides some isolation
between the RF, IF and LO ports.
3
SL2030
IF OUT
R3
C35
C4
L6
VCC2
C33
B1 BALUN
C5
R4
R5
C16
C20
L2
L4
C15
GND
GND
GND
GND
C2
L10
RFIN
L11
C29
RFIN
1
16
2
15
3
14
4
SL
2030
5
7
10
8
9
C1
C17
C9
D2
VCC/VCO
LO2
R10
C19
LO1
12
11
C11
C14
VCC2
IF1
13
6
C32
VCC3
L5
IF2
L3
VCC3
C6
J2
POWER
1 5V DEVICE SUPPLY
2 GND
L7
VCC1
S1 RESONATOR
SKT4 EXTERNAL
VARACTOR DRIVE
(REMOVE R9)
VCC/VCO
C10
PRSC1
C13
VCC/LNA
D1
VCC1
C3
R2
SKT1
RFIN
C18
R1
C8
C21
R9
R12
L1
C22
SKT2
130V
C4
NOTE: Refer to Table 1 for component values
L9
C42
R8
C31
R7
CP
X1 C30
XTAL
REF/COMP
15V
ADDRESS
SDA
J3
SCL5
3
SCL
5V
4
P3
5
P2
SDA5
1
16
2
15
3
14
4
5
6
SP
5659
13
12
11
7
10
8
9
DRIVE
T1
BCW31
VEE
RF I/P
RF I/P
30V
C24
15V
VCC
ADC C43
C46
P0
P1
R11
6
I2C BUS
C47
C38
Figure 6 SL2030 upconverter application
4
5V
J1
POWER
1 30V SYNTHESISER
2
GND
3
5V SYNTHESISER
C41
SL2030
Component
Value/type
Component
C1
C2
C3
C4
C5
C6
C7
C8
C9
C10
C11
C12
C13
C14
C15
C16
C17
C18
C19
C20
C21
C22
C23
C24
C25
1nF
1nF
1 nF
1·5pF
1pF
1pF
C26
C27
C28
C29
C30
C31
C32
C33
C34
C35
C36
C37
C38
C39
C40
C41
C42
C43
C44
C45
C46
C47
D1
D2
L1
100pF
100pF
100pF
10µF
100nF
100nF
100pF
100pF
100nF
100nF
2pF
100pF
1nF
33nF
1nF
Value/type
1·5pF
18pF
330nF
1nF
1nF
100nF
1nF
100pF
4·7µF
3·3nF
100nF
100nF
100pF
IT402
IT402
100nH
Component
Value/type
L2
L3
L4
L5
L6
L7
L8
L9
L10
L11
R1
R2
R3
R4
R5
R6
R7
R8
R9
R10
R11
R12
S1
T1
X1
18nH
220nH
18nH
220nH
220nH
220nH
6·8nH
6·8nH
220Ω
20Ω
1kΩ
120Ω
120Ω
15kΩ
22kΩ
15kΩ
1kΩ
4·7kΩ
50Ω
Resonator (Figure 7)
BCW31
4MHz crystal
Table 1 Component values for Figure 6
0·5
0·5
1·5
1·0
1·5
0·5
3
3
3
Figure 7 Microstrip resonator (dimensions are in mm)
5
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