IDT5T2010BBI IDT, Integrated Device Technology Inc, IDT5T2010BBI Datasheet - Page 8

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IDT5T2010BBI

Manufacturer Part Number
IDT5T2010BBI
Description
IC CLK DVR ZD PLL 2.5V 144-BGA
Manufacturer
IDT, Integrated Device Technology Inc
Series
TeraClock™r
Type
PLL Clock Driverr
Datasheet

Specifications of IDT5T2010BBI

Pll
Yes with Bypass
Input
eHSTL, HSTL, LVPECL, LVTTL
Output
eHSTL, HSTL, LVTTL
Number Of Circuits
1
Ratio - Input:output
2:10
Differential - Input:output
Yes/No
Frequency - Max
250MHz
Divider/multiplier
Yes/No
Voltage - Supply
2.3 V ~ 2.7 V
Operating Temperature
-40°C ~ 85°C
Mounting Type
Surface Mount
Package / Case
144-BGA
Frequency-max
250MHz
Lead Free Status / RoHS Status
Contains lead / RoHS non-compliant
Other names
5T2010BBI

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DC ELECTRICAL CHARACTERISTICS OVER OPERATING RANGE FOR HSTL
NOTES:
1. See RECOMMENDED OPERATING RANGE table.
2. V
3. V
4. For single-ended operation, in differential mode, REF
5. Voltage required to maintain a logic HIGH, single-ended operation in differential mode.
6. Voltage required to maintain a logic LOW, single-ended operation in differential mode.
7. Typical values are at V
8. The reference clock input is capable of HSTL, eHSTL, LVEPECL, 1.8V or 2.5V LVTTL operation independent of the device output. (See Input/Output Selection table.)
POWER SUPPLY CHARACTERISTICS FOR HSTL OUTPUTS
NOTES:
1. These power consumption characteristics are for all the valid input interfaces and cover the worst case input and output interface combinations.
2. The termination resistors are excluded from these measurements.
3. If the differential input interface is used, the true input is held LOW and the complementary input is held HIGH.
4. FS = HIGH.
IDT5T2010
2.5V ZERO DELAY PLL CLOCK DRIVER TERACLOCK
Input Characteristics
Output Characteristics
Symbol
only. The DC differential voltage must be maintained to guarantee retaining the existing HIGH or LOW input. The AC differential voltage must be achieved to guarantee switching
to a new state.
Symbol
DIF
CM
I
I
I
I
V
V
I
DDQQ
I
DDDQ
V
V
V
V
DDPD
I
TOTQ
V
V
V
V
DDQ
DDD
TOT
I
I
REF
DIF
IH
CM
OH
OX
IL
OL
IK
IN
IH
IL
specifies the minimum input differential voltage (V
specifies the maximum allowable range of (V
Input HIGH Current
Input LOW Current
Clamp Diode Voltage
DC Input Voltage
DC Differential Voltage
DC Common Mode Input Voltage
DC Input HIGH
DC Input LOW
Single-Ended Reference Voltage
Output HIGH Voltage
Output LOW Voltage
FB/FB Output Crossing Point
Quiescent V
Quiescent V
Power Down Current
Dynamic V
Current per Output
Dynamic V
Current per Output
Total Power V
Total Power V
DD
= 2.5V, V
Parameter
DD
DDQ
Parameter
DDQ
DD
DDQ
Power Supply
DD
(4,6,8)
Power Supply Current
Power Supply
(4,5,8)
Power Supply Current
Supply Current
Supply Current
DDQ
(2,8)
= 1.5V, +25°C ambient.
(4,8)
(4)
TR
(3,8)
(4)
+ V
TR
[1:0]
(3)
(3)
- V
/V
CP
REF
) /2. Differential mode only.
CP
) required for switching where V
[1:0]
V
PLL_EN = HIGH, DS
FBF
V
PLL_EN = HIGH, DS
FBF
V
V
V
V
V
V
V
V
V
V
I
I
I
I
OH
OH
OL
OL
DDQ
DDQ
DD
DD
DD
DDQ
DDQ
DDQ
DDQ
DD
DD
DD
is tied to the DC voltage V
= 8mA
= 100μA
= -8mA
= -100μA
[2:1]
[2:1]
= 2.7V
= 2.7V
= 2.3V, I
= Max., PD = LOW, nSOE = LOW, PLL_EN = HIGH
= Max., V
= Max., V
= 1.5V, F
= 1.5V, F
= 1.5V, F
= 1.5V, F
= Max., REF = LOW, PD = HIGH, nSOE = LOW,
= Max., REF = LOW, PD = HIGH, nSOE = LOW,
= LH, Outputs enabled, All outputs unloaded
= LH, Outputs enabled, All outputs unloaded
Test Conditions
Test Conditions
IN
DDQ
DDQ
VCO
VCO
VCO
VCO
= -18mA
= Max., C
= Max., C
= 100MHz, C
= 250MHz, C
= 100MHz, C
= 250MHz, C
8
[1:0]
[1:0]
V
V
I
I
= V
= GND/V
(2)
= MM, nF
= MM, nF
TR
REF
is the "true" input level and V
L
L
DDQ
[1:0]
= 0pF
= 0pF
L
L
L
L
.
/GND
= 15pF
= 15pF
= 15pF
= 15pF
DDQ
[2:1]
[2:1]
= LH,
= LH,
V
V
V
V
DDQ
REF
DDQ
DDQ
Min.
- 0.3
680
0.2
/2 - 150
+ 100
- 0.1
- 0.4
CP
INDUSTRIAL TEMPERATURE RANGE
is the "complement" input level. Differential mode
(1)
V
Typ.
Typ.
- 0.7
DDQ
750
750
0.7
0.8
15
13
16
35
55
45
80
(7)
/2
V
V
DDQ
REF
- 1.2
+3.6
Max
Max
120
900
±5
±5
0.4
0.1
/2 + 150
25
50
20
25
55
85
70
3
- 100
μA/MHz
μA/MHz
(1)
Unit
Unit
mV
mV
mV
mV
mV
mA
μA
mA
mA
mA
μA
V
V
V
V
V

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