NTT Achieves the World's Fastest Optical Transmission of over 2 Tbits/s Per Wavelength
NTT Corporation has achieved a groundbreaking milestone in optical communication by successfully conducting the world's fastest optical transmission experiment, transmitting digital coherent optical signals exceeding 2 Tbits/s per wavelength. The experiment utilized an ultra-wideband baseband amplifier IC module and advanced digital signal processing technology, achieving a 240 km transmission of an optical signal of 2.02 Tbits/s. This advancement is expected to enhance the scalability and efficiency of the All-Photonics Network, supporting future 5G and 6G communication initiatives.
- Demonstrated a world-record optical transmission speed of 2.02 Tbits/s over 240 km.
- Utilized advanced digital signal processing technology to enhance optical signal quality.
- Technology expected to contribute significantly to IOWN and 6G initiatives.
- None.
A Large Capacity Communication Network Technology to Support IOWN & 6G

Fig 1: Our Result Compared with Conventional Technology (Graphic: Business Wire)
In this experiment,
This result suggests that further scalability of digital coherent optical transmission technology can achieve both a large capacity per wavelength―which is more than double the conventional level―and a long transmission distance. This core technology is expected to lead the development of the All-Photonics Network of the IOWN4 and 6G initiatives.
Communication traffic is predicted to increase in the future due to the proliferation of 5G services that will address various social issues and the development of IOWN and 6G services. The All-Photonics Network, which is IOWN's backbone optical communication network, must cost-efficiently achieve even greater capacity. In the future, to economically transmit ultra-high-speed Ethernet signals of 1.6 terabits per second or more over long distances, we hope to achieve long-distance optical transmission of more than 2 Tbits/s per wavelength by expanding the transmission capacity per optical signal wavelength and the signal symbol rate6, optimizing the amount of information per symbol.
To expand the transmission capacity per wavelength, it is necessary to overcome the speed limit of silicon CMOS7 semiconductor circuits. To date,
Now, for the first time in the world, we have demonstrated the transmission and reception of a digital coherent optical signal exceeding 2 Tbits/s per wavelength (Fig. 1, left) and successfully conducted an optical amplification repeater transmission experiment of 2.02 Tbits/s over 240 km (Fig. 1, right). Our team achieved this feat through the advanced fusion of
An ultra-wideband baseband amplifier IC module
An ultra-high-precision optical transceiver circuit distortion compensation technology based on digital signal processing technology
In this experiment,
This technology is expected to enable highly reliable transmission of large-capacity signals by multiplexing optical signals exceeding 2 Tbits/s per wavelength. In particular, technology for increasing the modulation speed of optical signals not only contributes to increasing the capacity per wavelength, but also, as shown in Fig. 5, can generate large-capacity signals when combined with wavelength resource expansion technology 10. Our technology is also expected enable long-distance transmission.
1 According to NTT’s research as of
2 Digital coherent technology is a transmission method that combines digital signal processing and coherent reception. Coherent reception is a technology that makes it possible to receive the amplitude and phase of light by causing interference between a light source placed on the receiving side and the received optical signal. Modulation methods such as polarization multiplexing and phase modulation improve frequency utilization efficiency, and high-precision optical signal compensation using digital signal processing and coherent reception achieve a significant improvement in reception sensitivity.
3 An ultra-wideband baseband amplifier IC (Integrated Circuit) developed by
https://group.ntt/jp/newsrelease/2019/06/03/190603b.html
4 NTT Technology Report for
https://group.ntt/jp/newsrelease/2019/05/09/190509b.html
5 PCS (Probabilistic Constellation Shaping) is a technology that reduces the signal-to-noise ratio requirements for signal transmission by optimizing the distribution and arrangement of signal points based on information theory. QAM (Quadrature Amplitude Modulation) is a modulation method that carries information on both the amplitude and phase of signal light, and 144QAM has 144 signal points. By applying PCS technology to the QAM system, it becomes possible to optimize the signal quality according to the transmission path conditions.
6 The number of times the optical waveform switches in one second. A 176 gigabaud optical signal transmits information by switching the optical waveform 176 billion times per second.
7 Complementary metal oxide semiconductors are used to realize large-scale functions such as CPU as a structure to realize a semiconductor integrated circuit. This type of circuit is often used for transmission and reception of large-capacity optical transmission because the amount of signal is large. Although the speed is increasing due to miniaturization, compound semiconductors are superior in terms of high speed.
8 NTT News Release: “World's First Successful Wavelength Multiplexing Optical Transmission Experiment for Long-distance Transmission of 1 Tbit/s per Wavelength: A Future Large-Capacity Communication Network Technology Supporting the Spread of IoT and 5G Services”
https://group.ntt/en/newsrelease/2019/03/07/190307a.html
9 A heterojunction bipolar transistor using indium phosphide, a group III-V semiconductor. It is a transistor with excellent speed and withstand voltage.
10 NTT News Release: “World's First Success in Broadband Optical Amplification Relay Transmission Using Optical Parametric Amplifier: Capable of More than Twice the Capacity of Conventional Optical Amplifiers”
https://group.ntt/jp/newsrelease/2021/01/28/210128b.html
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