RO3023
•
•
•
•
Ideal for European 433.92 MHz Transmitters
Low Series Resistance
Quartz Stability
Rugged, Hermetic, Low-Profile TO39 Case
The RO3023 is a true one-port, surface-acoustic-wave (SAW) resonator in a low-profile TO39 case. It
provides reliable, fundamental-mode, quartz frequency stabilization of fixed-frequency transmitters operating
at 433.92 MHz. The RO3023 is designed specifically for remote-control and wireless security devices
operating in Europe under ETSI I-ETS 300 220 and in Germany under FTZ 17 TR 2100.
433.97 MHz
SAW
Resonator
Absolute Maximum Ratings
Rating
CW RF Power Dissipation
(See: Typical Test Circuit)
DC Voltage Between Any Two Pins
(Observe ESD Precautions)
Case Temperature
Soldering Temperature (10 seconds / 5 cycles max.)
Value
+0
±30
-40 to +85
260
Units
dBm
VDC
°C
°C
TO39-3 Case
Electrical Characteristics
Characteristic
Center Frequency at +25 °C
Insertion Loss
Quality Factor
Temperature Stability
Unloaded Q
50 W Loaded Q
Turnover Temperature
Turnover Frequency
Frequency Temperature Coefficient
Frequency Aging
RF Equivalent RLC Model
Absolute Value during the First Year
Motional Resistance
Motional Inductance
Motional Capacitance
Pin 1 to Pin 2 Static Capacitance
Transducer Static Capacitance
Test Fixture Shunt Inductance
Lid Symbolization
DC Insulation Resistance between Any Two Pins
Absolute Frequency
Tolerance from 433.970 MHz
Sym
f
C
Δf
C
IL
Q
U
Q
L
T
O
f
O
FTC
|fA|
R
M
L
M
C
M
C
O
C
P
L
TEST
Notes
2, 3, 4, 5
2, 5, 6
5, 6, 7
Minimum
433.895
Typical
Maximum
434.045
±75
Units
MHz
kHz
dB
2.5
8,500
2200
10
25
f
c
+ 2.3
0.037
≤10
1.0
34.5
107
1.3
2.1
1.8
68.2
RFM RO3023 Datecode
4.8
40
°C
kHz
ppm/°C
2
ppm/yr
MΩ
Ω
µH
fF
pF
pF
nH
6, 7, 8
1
5
5, 7, 9
5, 6, 9
5, 6, 7, 9
2, 7
CAUTION: Electrostatic Sensitive Device. Observe precautions for handling.
Notes:
1.
2.
3.
4.
5.
6.
Frequency aging is the change in f
C
with time and is specified at +65°C or
less. Aging may exceed the specification for prolonged temperatures
above +65°C. Typically, aging is greatest the first year after manufacture,
decreasing in subsequent years.
The center frequency, f
C
, is measured at the minimum insertion loss point,
IL
MIN
, with the resonator in the 50
Ω
test system (VSWR
≤
1.2:1). The
shunt inductance, L
TEST
, is tuned for parallel resonance with C
O
at f
C
.
One or more of the following United States patents apply: 4,454,488 and
4,616,197.
Typically, equipment utilizing this device requires emissions testing and
government approval, which is the responsibility of the equipment
manufacturer.
Unless noted otherwise, case temperature T
C
= +25°C±2°C.
The design, manufacturing process, and specifications of this device are
subject to change without notice.
7.
8.
9.
Derived mathematically from one or more of the following directly
measured parameters: f
C
, IL, 3 dB bandwidth, f
C
versus T
C
, and C
O
.
Turnover temperature, T
O
, is the temperature of maximum (or turnover)
frequency, f
O
. The nominal frequency at any case temperature, T
C
, may
be calculated from: f = f
O
[1 - FTC (T
O
-T
C
)
2
]. Typically,
oscillator
T
O
is
20°C less than the specified
resonator
T
O
.
This equivalent RLC model approximates resonator performance near the
resonant frequency and is provided for reference only. The capacitance
C
O
is the static (nonmotional) capacitance between Pin1 and Pin 2
measured at low frequency (10 MHz) with a capacitance meter. The
measurement includes case parasitic capacitance with a floating case.
For usual grounded case applications (with grund connected to either Pin
1 or Pin 2 and to the case), add approximately 0.25 pF to C
O
.
www.RFM.com
E-mail: info@rfm.com
©2008 by RF Monolithics, Inc.
Page 1 of 2
RO3023 - 3/26/08
Electrical Connections
This one-port, two-terminal SAW resonator is bidirectional. The terminals
are interchangeable with the exception of circuit board layout.
Temperature Characteristics
The curve shown on the right
accounts for resonator
contribution only and does not
include oscillator temperature
characteristics.
f
C
= f
O
, T
C
= T
O
0
(f-fo ) / fo (ppm)
0
-50
-100
-150
-200
0 +20 +40 +60 +80
Pin
1
2
3
Connection
Terminal 1
Terminal 2
Case Ground
Pin 1
Bottom View
Pin 2
-50
-100
-150
-200
-80 -60 -40 -20
Pin 3
Δ
T = T
C
- T
O
( °C )
Typical Test Circuit
The test circuit inductor, L
TEST
, is tuned to resonate with the static
capacitance, C
O
at F
C
.
Equivalent LC Model
The following equivalent LC model is valid near resonance:
Electrical Test:
Ω
Network
Analyzer
1
2
Ω
Network
Analyzer
1
2
Cp
Co= Cp + 0.25 pF*
*Case Parasitics
3
R
M
L
M
C
M
0.5 pF*
0.5 pF*
Power Test:
3
P
INCIDENT
1
Low-Loss
Matching
Network
to 50
Ω
50
Ω
Source at
P
REFLECTED
F
C
3
2
Case Design
C
G
B
H
F
CW RF Power Dissipation =
-P
P
INCIDENT
REFLECTED
Typical Application Circuits
Typical Low-Power Transmitter Application:
200k
Ω
A
D
(3 places)
E
Modulation
Input
MPS-H10
+9VDC
J
(2 places)
45°
47
C1
L1
1
2
(Antenna)
C2
Millimeters
Dimensions
Min
Max
9.30
3.18
2.50
3.50
Inches
Min
Max
0.366
0.125
0.098
0.138
0.018 Nominal
0.200 Nominal
0.100 Nominal
0.100 Nominal
0.040
0.055
ROXXXX
Bottom View
3
470
RF Bypass
A
B
C
D
E
Typical Local Oscillator Application:
Output
C1
1
2
0.46 Nominal
5.08 Nominal
2.54 Nominal
2.54 Nominal
1.02
1.40
+VDC
L1
F
G
H
J
+VDC
C2
ROXXXX
Bottom View
3
RF Bypass
www.RFM.com
E-mail: info@rfm.com
©2008 by RF Monolithics, Inc.
Page 2 of 2
RO3023 - 3/26/08