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PCA9601DPZ датащи(PDF) 9 Page - NXP Semiconductors

номер детали PCA9601DPZ
подробное описание детали  Dual bidirectional bus buffer
PDF  31 Pages
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производитель  NXP [NXP Semiconductors]
домашняя страница  http://www.nxp.com
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PCA9601DPZ датащи(HTML) 9 Page - NXP Semiconductors

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NXP Semiconductors
PCA9601
Dual bidirectional bus buffer
Tamb = -40 °C to +85 °C unless otherwise specified; voltages are specified with respect to GND with VCC = 2.5 V to 15 V
unless otherwise specified. Typical values are measured at VCC = 5 V and Tamb = 25 °C.
Symbol Parameter
Conditions
Min
Typ
Max
Unit
ΔV/ΔT
voltage variation with
temperature
Figure 9
-
-4
-
%/K
Buffer response time[5]
VCC = 5 V; pin TX pull-up resistor = 160 Ω; pin SX pull-up resistor = 2.2 kΩ; no capacitive load
VSX to VTX, VSY to VTY; on falling
input between VSX = input switching
threshold, and VTX output falling to
50 % VCC
-
50
-
ns
VSX to VTX, VSY to VTY; on rising
input between VSX = input switching
threshold, and VTX output reaching
50 % VCC
-
60
-
ns
VRX to VSX, VRY to VSY; on falling
input between VRX = input switching
threshold, and VSX output falling to
50 % VCC
-
100
-
ns
td
delay time
VRX to VSX, VRY to VSY; on rising
input between VRX = input switching
threshold, and VSX output reaching
50 % VCC
-
95
-
ns
Input capacitance
Ci
input capacitance
effective input capacitance of any
signal pin measured by incremental
bus rise times; guaranteed by
design, not production tested
-
-
10
pF
Table 6. Characteristics...continued
[1]
This bus pull-up current specification is intended to assist design of the bus pull-up resistor. It is not a specification of the sink capability (see VOL under
sub-section "Output logic LOW level"). When used on an Fm+ bus the load current is limited to 15 mA by the drive capability of PCA9601. When used
in a standard I2C-bus the load current is limited by the drive capability of other devices on the bus. The maximum static sink current for a Standard/Fast-
mode I2C-bus is 3 mA and PCA9601 is guaranteed to sink more than 3 mA at SX/SY when its pins are holding the bus LOW. However, when an external
device pulls the SX/SY pins below 1.4 V, the PCA9601 will source a current between 0 mA and 1 mA maximum. When that other external device is driving
LOW it will pull the bus connected to SX or SY down to, or below, the 0.4 V level referenced in the I2C-bus specification and in these test conditions. Then
that device must be able to sink up to 1 mA coming from SX/SY plus the usual pull-up current. Therefore in Standard and Fast-mode systems the external
pull-up used at SX/SY should be limited to 2 mA. The typical and maximum currents sourced by SX/SY as a function of junction temperature are shown in
Figure 10, and the equivalent circuit at the SX/SY interface is shown in Figure 4.
[2]
Valid over temperature for VCC ≤ 5 V. At higher VCC, this current may increase to maximum -20 μA at VCC = 15 V.
[3]
The input logic threshold is independent of the supply voltage.
[4]
The minimum value requirement for pull-up current, 0.3 mA, guarantees that the minimum value for VSX output LOW will always exceed the maximum VSX
input HIGH level to eliminate any possibility of latching. The specified difference is guaranteed by design within any IC. While the tolerances on absolute
levels allow a small probability, the LOW from one SX output is recognized by an SX input of another PCA9601, this has no consequences for normal
applications. In any design the SX pins of different ICs should never be linked because the resulting system would be very susceptible to induced noise
and would not support all I2C-bus operating modes.
[5]
The fall time of VTX from 5 V to 2.5 V in the test is approximately 10 ns.
The fall time of VSX from 5 V to 2.5 V in the test is approximately 20 ns.
The rise time of VTX from 0 V to 2.5 V in the test is approximately 15 ns.
The rise time of VSX from 0.7 V to 2.5 V in the test is approximately 25 ns.
PCA9601
All information provided in this document is subject to legal disclaimers.
© NXP B.V. 2022. All rights reserved.
Product data sheet
Rev. 3.1 — 4 January 2022
9 / 31



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