ETHERNET TRANSCEIVER Network Interfaces 210

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Part RoHS Manufacturer Telecom IC Type Temperature Grade Terminal Form No. of Terminals Package Code Package Shape Total Dose (V) Package Body Material Surface Mount No. of Functions No. of Channels Technology Screening Level Nominal Negative Supply Voltage No. of Transceivers Maximum Supply Current Nominal Supply Voltage Power Supplies (V) Package Style (Meter) Package Equivalence Code Sub-Category Terminal Pitch Maximum Operating Temperature Minimum Operating Temperature Terminal Finish Terminal Position Data Rate JESD-30 Code Moisture Sensitivity Level (MSL) Maximum Seated Height Width Qualification Additional Features JESD-609 Code Maximum Time At Peak Reflow Temperature (s) Peak Reflow Temperature (C) Length

BCM54220SB0KFBG

Broadcom

ETHERNET TRANSCEIVER

BALL

144

RECTANGULAR

PLASTIC/EPOXY

YES

1

2

1 V

GRID ARRAY

BOTTOM

1000 Mbps

R-PBGA-B144

3

260

DP83TC814SRHATQ1

Texas Instruments

ETHERNET TRANSCEIVER

NO LEAD

36

HVQCCN

SQUARE

PLASTIC/EPOXY

YES

1

AEC-Q100

1

95 mA

3.3 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC36,.24SQ,20

.5 mm

125 Cel

-40 Cel

NICKEL PALLADIUM GOLD

QUAD

100000 Mbps

S-PQCC-N36

3

1 mm

6 mm

e4

260

6 mm

DP83TC814RRHATQ1

Texas Instruments

ETHERNET TRANSCEIVER

NO LEAD

36

HVQCCN

SQUARE

PLASTIC/EPOXY

YES

1

AEC-Q100

1

95 mA

3.3 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC36,.24SQ,20

.5 mm

125 Cel

-40 Cel

NICKEL PALLADIUM GOLD

QUAD

100000 Mbps

S-PQCC-N36

3

1 mm

6 mm

e4

260

6 mm

ADIN2111CCPZ-R7

Analog Devices

ETHERNET TRANSCEIVER

NO LEAD

48

HVQCCN

SQUARE

UNSPECIFIED

YES

1

2

1.1 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC48,.27SQ,20

.5 mm

105 Cel

-40 Cel

QUAD

40000 Mbps

S-XQCC-N48

3

.8 mm

7 mm

30

260

7 mm

ADIN2111BCPZ-R7

Analog Devices

ETHERNET TRANSCEIVER

NO LEAD

48

HVQCCN

SQUARE

UNSPECIFIED

YES

1

2

1.1 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC48,.27SQ,20

.5 mm

85 Cel

-40 Cel

QUAD

40000 Mbps

S-XQCC-N48

3

.8 mm

7 mm

30

260

7 mm

ADIN2111BCPZ

Analog Devices

ETHERNET TRANSCEIVER

NO LEAD

48

HVQCCN

SQUARE

UNSPECIFIED

YES

1

2

1.1 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC48,.27SQ,20

.5 mm

85 Cel

-40 Cel

QUAD

40000 Mbps

S-XQCC-N48

3

.8 mm

7 mm

30

260

7 mm

ADIN2111CCPZ

Analog Devices

ETHERNET TRANSCEIVER

NO LEAD

48

HVQCCN

SQUARE

UNSPECIFIED

YES

1

2

1.1 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC48,.27SQ,20

.5 mm

105 Cel

-40 Cel

QUAD

40000 Mbps

S-XQCC-N48

3

.8 mm

7 mm

30

260

7 mm

BCM54216EB1IMLG

Broadcom

ETHERNET TRANSCEIVER

NO LEAD

68

QCCN

RECTANGULAR

UNSPECIFIED

YES

1

CMOS

1

CHIP CARRIER

QUAD

R-XQCC-N68

DP83TC813RRHFTQ1

Texas Instruments

ETHERNET TRANSCEIVER

NO LEAD

28

HVQCCN

RECTANGULAR

PLASTIC/EPOXY

YES

1

AEC-Q100

1

3.3 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC28,.16X.2,20

.5 mm

125 Cel

-40 Cel

NICKEL PALLADIUM GOLD

QUAD

100000 Mbps

R-PQCC-N28

2

1 mm

4 mm

the 1.25-Gbps rate of the SGMII is excessive

e4

260

5 mm

DP83TC813SRHFTQ1

Texas Instruments

ETHERNET TRANSCEIVER

NO LEAD

28

HVQCCN

RECTANGULAR

PLASTIC/EPOXY

YES

1

AEC-Q100

1

3.3 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC28,.16X.2,20

.5 mm

125 Cel

-40 Cel

NICKEL PALLADIUM GOLD

QUAD

100000 Mbps

R-PQCC-N28

2

1 mm

4 mm

the 1.25-Gbps rate of the SGMII is excessive

e4

260

5 mm

BCM5248UA4IQLEG

Broadcom

ETHERNET TRANSCEIVER

BALL

256

RECTANGULAR

PLASTIC/EPOXY

YES

1

CMOS

1

1.8 V

BGA256(UNSPEC)

BOTTOM

R-PBGA-B256

IT IS ALSO AVAILABLE IN 128 PIN QFP

BCM8725AIFBG

Broadcom

ETHERNET TRANSCEIVER

BALL

324

SQUARE

PLASTIC/EPOXY

YES

1

2

1.2 V

BOTTOM

S-PBGA-B324

BCM5481A2IFBG

Broadcom

ETHERNET TRANSCEIVER

BALL

100

SQUARE

PLASTIC/EPOXY

YES

1

CMOS

1

BOTTOM

1000 Mbps

S-PBGA-B100

BCM54991LB0IFEBG

Broadcom

ETHERNET TRANSCEIVER

BALL

SQUARE

PLASTIC/EPOXY

YES

1

CMOS

1

.8 V

BOTTOM

5000 Mbps

S-PBGA-B

BCM82756AIFSBG

Broadcom

ETHERNET TRANSCEIVER

BALL

256

BGA

SQUARE

PLASTIC/EPOXY

YES

1

CMOS

1 V

GRID ARRAY

BOTTOM

10000 Mbps

S-PBGA-B256

LAN8830-V/PSA

Microchip Technology

ETHERNET TRANSCEIVER

NO LEAD

48

HVQCCN

SQUARE

PLASTIC/EPOXY

YES

1

1

1.1 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC48,.27SQ,20

.5 mm

105 Cel

-40 Cel

QUAD

1000 Mbps

S-PQCC-N48

1 mm

7 mm

7 mm

LAN8830T/PSA

Microchip Technology

ETHERNET TRANSCEIVER

NO LEAD

48

HVQCCN

SQUARE

PLASTIC/EPOXY

YES

1

1

1.1 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC48,.27SQ,20

.5 mm

70 Cel

0 Cel

QUAD

1000 Mbps

S-PQCC-N48

1 mm

7 mm

7 mm

LAN8830/PSA

Microchip Technology

ETHERNET TRANSCEIVER

NO LEAD

48

HVQCCN

SQUARE

PLASTIC/EPOXY

YES

1

1

1.1 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC48,.27SQ,20

.5 mm

70 Cel

0 Cel

QUAD

1000 Mbps

S-PQCC-N48

1 mm

7 mm

7 mm

Network Interfaces

A network interface is an electronic component that connects a device to a network, enabling it to communicate with other devices and access shared resources. Network interfaces are essential for modern communication systems, providing a means of transmitting and receiving data over a variety of communication channels and protocols.

Some common types of network interfaces include Ethernet, Wi-Fi, Bluetooth, and cellular network interfaces. Ethernet is a wired network interface that uses twisted-pair cables to transmit data over local area networks (LANs). Wi-Fi is a wireless network interface that uses radio waves to transmit data over wireless local area networks (WLANs). Bluetooth is a short-range wireless network interface that is used for connecting peripheral devices such as keyboards and headphones to computers and mobile devices. Cellular network interfaces are used for mobile communications over cellular networks, providing internet connectivity and voice communication.

Network interfaces use various protocols and standards to ensure reliable and efficient data transmission. These protocols include TCP/IP, which is used for internet communication, and IEEE 802.11, which is used for wireless LANs. Network interfaces also use techniques such as packet framing, error correction, and flow control to ensure that data is transmitted accurately and efficiently.

In addition to providing a means of data transmission, network interfaces also enable devices to access shared resources such as printers and file servers. They also enable devices to communicate with each other, allowing for collaboration and information sharing.