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Terabit Ethernet (TbE) is
Ethernet Ethernet ( ) is a family of wired computer networking technologies commonly used in local area networks (LAN), metropolitan area networks (MAN) and wide area networks (WAN). It was commercially introduced in 1980 and first standardized in 198 ...
with speeds above 100 Gigabit Ethernet. The 400 Gigabit Ethernet (400G, 400GbE) and 200 Gigabit Ethernet (200G, 200GbE) standard developed by the
IEEE The Institute of Electrical and Electronics Engineers (IEEE) is an American 501(c)(3) organization, 501(c)(3) public charity professional organization for electrical engineering, electronics engineering, and other related disciplines. The IEEE ...
P802.3bs Task Force using broadly similar technology to 100 Gigabit Ethernet was approved on December 6, 2017. On February 16, 2024 the 800 Gigabit Ethernet (800G, 800GbE) standard developed by the IEEE P802.3df Task Force was approved. The Optical Internetworking Forum (OIF) has already announced five new projects at 112 
Gbit/s In telecommunications, data transfer rate is the average number of bits ( bitrate), characters or symbols ( baudrate), or data blocks per unit time passing through a communication link in a data-transmission system. Common data rate units are mu ...
which would also make 4th generation (single-lane) 100 GbE links possible. The
IEEE The Institute of Electrical and Electronics Engineers (IEEE) is an American 501(c)(3) organization, 501(c)(3) public charity professional organization for electrical engineering, electronics engineering, and other related disciplines. The IEEE ...
P802.3df Task Force started work in January 2022 to standardize and Ethernet. In November 2022 the IEEE 802.3df project objectives were split in two, with 1.6T and 200G/lane work being moved to the new IEEE 802.3dj project. The timeline for the 802.3dj project indicates completion in July 2026.


History

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and
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, among other companies, have expressed a need for TbE. While a speed of is achievable with existing technology, () would require different technology. Accordingly, at the IEEE Industry Connections Higher Speed Ethernet Consensus group meeting in September 2012, 400 GbE was chosen as the next generation goal. Additional 200 GbE objectives were added in January 2016. The
University of California, Santa Barbara The University of California, Santa Barbara (UC Santa Barbara or UCSB) is a Public university, public Land-grant university, land-grant research university in Santa Barbara County, California, United States. Tracing its roots back to 1891 as an ...
(UCSB) attracted help from
Agilent Technologies Agilent Technologies, Inc. is an American global company headquartered in Santa Clara, California, that provides instruments, software, services, and consumables for laboratories. Agilent was established in 1999 as a spin-off from Hewlett-Packar ...
, Google,
Intel Intel Corporation is an American multinational corporation and technology company headquartered in Santa Clara, California, and Delaware General Corporation Law, incorporated in Delaware. Intel designs, manufactures, and sells computer compo ...
,
Rockwell Collins Rockwell Collins, Inc. was a multinational corporation headquartered in Cedar Rapids, Iowa, providing avionics and information technology systems and services to government agencies and aircraft manufacturers. It was formed when the Collins Radi ...
, and Verizon Communications to help with research into next generation Ethernet. As of early 2016, chassis/modular based core router platforms from Cisco, Juniper and other major manufacturers support full duplex data rates per slot. One, two and four port 100 GbE and one port 400 GbE line cards are presently available. As of early 2019, 200 GbE line cards became available after 802.3cd standard ratification. In 2020 the Ethernet Technology Consortium announced a specification for 800 Gigabit Ethernet. 200G Ethernet uses PAM4 signaling which allows 2 bits to be transmitted per clock cycle, but at a higher implementation cost. Cisco introduced an 800G Ethernet switch in 2022. In 2024, Nokia routers with 800G Ethernet were deployed.


Standards development

The IEEE formed the "IEEE 802.3 Industry Connections Ethernet Bandwidth Assessment Ad Hoc", to investigate the business needs for short and long term bandwidth requirements. IEEE 802.3's "400 Gb/s Ethernet Study Group" started working on the generation standard in March 2013. Results from the study group were published and approved on March 27, 2014. Subsequently, the IEEE 802.3bs Task Force started working to provide physical layer specifications for several link distances. The IEEE 802.3bs standard was approved on December 6, 2017. The IEEE 802.3cd standard was approved on December 5, 2018. The IEEE 802.3cn standard was approved on December 20, 2019. The IEEE 802.3cm standard was approved on January 30, 2020. The IEEE 802.3cu standard was approved on February 11, 2021. The IEEE 802.3ck and 802.3db standards were approved on September 21, 2022. In November 2022 the IEEE 802.3df project objectives were split in two, with 1.6T and 200G/lane work being moved to the new IEEE 802.3dj project
Original IEEE P802.3df Objectives

Updated IEEE P802.3df Objectives to reduce scope to 800G Ethernet using 100G physical lanes

IEEE P802.3dj Objectives for Ethernet and PHYs that employ lanes

IEEE P802.3dj Objectives updated in May 2023 to include 200G/lane backplane Ethernet

IEEE P802.3dj Objectives updated in January 2024 to include additional PHY types
The IEEE 802.3df standard was approved on February 16, 2024.


IEEE project objectives

Like all speeds since 10 Gigabit Ethernet, the standards support only full-duplex operation. Other objectives include: # Preserve the Ethernet frame format utilizing the Ethernet MAC # Preserve minimum and maximum frame size of current Ethernet standard # Support a
bit error ratio In digital transmission, the number of bit errors is the number of received bits of a data stream over a communication channel that have been altered due to noise, interference, distortion or bit synchronization errors. The bit error rate ( ...
(BER) of 10−13, which is an improvement over the 10−12 BER that was specified for 10GbE, 40GbE, and 100GbE. # Support for OTN (transport of Ethernet across optical transport networks), and optional support for Energy-Efficient Ethernet (EEE).


802.3bs project

Define physical layer specifications supporting: * Ethernet ** at least 100 m over multi-mode fiber (400GBASE-SR16) using 16 parallel strands of fiber each at ** at least 500 m over single-mode fiber (400GBASE-DR4) using 4 parallel strands of fiber each at ** at least 2 km over single-mode fiber (400GBASE-FR8) using 8 parallel wavelengths ( CWDM) each at ** at least 10 km over single-mode fiber (400GBASE-LR8) using 8 parallel wavelengths (CWDM) each at ** 8 and 16 lane chip-to-chip/chip-to-module electrical interfaces (400GAUI-8 and 400GAUI-16) * Ethernet ** at least 500 m over single-mode fiber (200GBASE-DR4) using 4 parallel strands of fiber each at ** at least 2 km over single-mode fiber (200GBASE-FR4) using 4 parallel wavelengths (CWDM) each at ** at least 10 km over single-mode fiber (200GBASE-LR4) using 4 parallel wavelengths (CWDM) each at ** 4 or 8 lane chip-to-chip/chip-to-module electrical interfaces (200GAUI-4 and 200GAUI-8)


802.3cd project

* Define four-lane PHYs for operation over: ** copper twin-axial cables with lengths up to at least 3 m (200GBASE-CR4). ** printed circuit board backplane with a total channel insertion loss of ≤ 30 dB at 13.28125 GHz (200GBASE-KR4). * Define PHYs for operation over MMF with lengths up to at least 100 m (200GBASE-SR4).


802.3ck project

* Ethernet ** Define a two-lane Attachment Unit interface (AUI) for chip-to-module applications, compatible with PMDs based on per lane optical signaling (200GAUI-2 C2M) ** Define a two-lane Attachment Unit Interface (AUI) for chip-to-chip applications (200GAUI-2 C2C) ** Define a two-lane PHY for operation over electrical backplanes an insertion loss ≤ 28 dB at 26.56 GHz (200GBASE-KR2) ** Define a two-lane PHY for operation over twin axial copper cables with lengths up to at least 2 m (200GBASE-CR2) * Ethernet ** Define a four-lane Attachment Unit interface (AUI) for chip-to-module applications, compatible with PMDs based on per lane optical signaling (400GAUI-4 C2M) ** Define a four-lane Attachment Unit Interface (AUI) for chip-to-chip applications (400GAUI-4 C2C) ** Define a four-lane PHY for operation over electrical backplanes an insertion loss ≤ 28 dB at 26.56 GHz (400GBASE-KR4) ** Define a four-lane PHY for operation over twin axial copper cables with lengths up to at least 2 m (400GBASE-CR4)


802.3cm project

* Ethernet ** Define a physical layer specification supporting operation over 8 pairs of MMF with lengths up to at least 100 m (400GBASE-SR8) **Define a physical layer specification supporting operation over 4 pairs of MMF with lengths up to at least 100 m (400GBASE-SR4.2)


802.3cn project

* Ethernet ** Provide a physical layer specification supporting operation over four wavelengths capable of at least 40 km of SMF (200GBASE-ER4) * Ethernet ** Provide a physical layer specification supporting operation over eight wavelengths capable of at least 40 km of SMF (400GBASE-ER8)


802.3cu project

* Define a four-wavelength PHY for operation over SMF with lengths up to at least 2 km (400GBASE-FR4) * Define a four-wavelength PHY for operation over SMF with lengths up to at least 6 km (400GBASE-LR4-6)


802.3cw project

* Provide a physical layer specification supporting operation on a single wavelength capable of at least 80 km over a DWDM system (400GBASE-ZR) Dual polarization 16-state quadrature amplitude modulation (DP-16QAM) with coherent detection is proposed. The project was canceled in 2024.


802.3db project

* Ethernet ** Define a physical layer specification that supports operation over 2 pairs of MMF with lengths up to at least 50 m (200GBASE-VR2) ** Define a physical layer specification that supports operation over 2 pairs of MMF with lengths up to at least 100 m (200GBASE-SR2) * Ethernet ** Define a physical layer specification that supports operation over 4 pairs of MMF with lengths up to at least 50 m (400GBASE-VR4) ** Define a physical layer specification that supports operation over 4 pairs of MMF with lengths up to at least 100 m (400GBASE-SR4)
'IEEE P802.3db 100 Gb/s, 200 Gb/s, and 400 Gb/s Short Reach Fiber Task Force'


802.3df project

* Adds 800G Ethernet rate and specifies port types using existing 100G per lane technology
IEEE P802.3df Objectives for Ethernet and 400G and 800G PHYs using lanes


802.3dj project

* Adds Ethernet rate and specifies port types using new per lane technology. * Objectives for Ethernet and 200, 400 , and PHYs using lanes.IEEE P802.3dj
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200G port types


400G port types


800G port types


1.6T port types


See also

* Ethernet Alliance * Interconnect bottleneck * Fiber-optic cable *
Optical communication Optical communication, also known as optical telecommunication, is communication at a distance using light to carry information. It can be performed visually or by using electronic devices. The earliest basic forms of optical communication date ...
* Parallel optical interface


References


Further reading

* * * * * IEEE Reports ** ** **


External links

* * * * * * {{Ethernet Ethernet standards